Document kDp5xEn6oOYd6BgnOGwoja1EV
REVIEW ARTICLE
Plasma Cell Myeloma-New
Biological
Insights
and Advances
in Therapy
By Bart Barlogie, Joshua Epstein, Peter
P LASMA CELL myeloma has been the prototype of a
monoclonal
tumor cell proliferation
that reveals a
monoclonal protein in the serum or urine in more than 90% of
patients. The disease spans a spectrum of clinical entities,
including localized and disseminated, as well as indolent and
aggressive forms.t3 Patients typically suffer from painful
fractures, anemia or renal failure, and from recurrent infec-
tions associated with immunodeficiency.
With a median age
of 60 years, current treatments have been palliative rather
than curative.5 Thus complete remissions
from standard
alkylating
agent-glucocorticoid
programs have been
achieved infrequently,
and all patients succumb after a
median of about 3 years, even though about 10% of current
patients will survive 10 years.6
During the past 5 years, new insights have been gained of
the cellular and molecular biology of myeloma, so that the
previous notion of a terminally differentiated B-cell malig-
nancy is giving way to the provocative concept of an early
hematopoietic stem-cell disorder manifesting itself mainly at
the mature stage of B-cell lineage. Therapeutically
the
growth-controlling
effects of alpha-interferon7
and the feasi-
bility of hematopoietic stem-cell-supported
high-dose cyto-
toxic regimens8 have raised hope for a fundamental change in
prognosis that had been stagnant since the introduction
of
melphalan and prednisone some 25 years
9t This review
summarizes data that myeloma may be an early stem-cell
disorder; describes features that predict clinical outcome;
and reviews marrow-ablative
programs for patients with
newly diagnosed and refractory disease. Readers with inter-
est in traditional staging and treatments are referred to other
recent
2t 5
Genotypic Studies
MYELOMA
BIOLOGY
Because of the low fraction of cells in DNA synthesis, few
mitoses are usually available to define karyotype abnormali-
ties.t6tl Unlike results in leukemia and lymphoma, disease-
specific anomalies have not yet been identified; the presence
of complex numeric and structural rearrangements
suggests
a long disease course with many acquired genetic changes.
Analysis of nuclear DNA content by flow cytometry (that
does not depend on mitoses) has demonstrated aneuploidy in
80% of patients; hyperdiploidy was most frequent (70% of
total, with a DNA excess of 10% to 20%); diploidy was
present in 20%; and hypodiploidy in about lO%.t820 Also
confirmed
by cytogenetic
studies, DNA-hypodiploidy
was
associated frequently with only light-chain
production
and
with resistance to standard therapies. (Table i).t72t Chromo-
somal translocations, as in non-Hodgkin's lymphoma, were
found in about 10% ofcases, and t(8;14) abnormalities were
associated with an IgA isotype.t7 Deletions ofthe long arm of
chromosome 6 have recently been linked to lytic bone
disease.22 An adriamycin-resistant
myeloma cell line (8226/
DOX) displaying the multidrug resistance (MDR) pheno-
type has a deletion of the long arm of chromosome 7,23 which
is the site of the p-glycoprotein
gene.24
Selvanayagam,
and Raymond Alexanian
While the acquisition
of new DNA stemlines on flow
cytometry
is rare,25 this technique
is insensitive
for the
detection of structural aberrations
or small numeric chromo-
somal abnormalities.26
Indeed, the typical complexity
of
plasma cell karyotype suggests that clonal evolution must be
common. With the prospect of better in vitro culture meth-
ods, the authors expect that primary and evolutionary
karyo-
typic anomalies
will be identified
regularly
in myeloma
progenitor cells. Such information
may help define discrete
disease entities and direct research into the molecular mech-
anisms of abnormal growth and differentiation.
Cell Kinetics and In Vitro Growth of Tumor Cells
Laboratory
methods for cytokinetic
studies have been
refined, so that autoradiography
with tritiated thymidine has
been replaced by the more convenient
bromodeoxyuridine
(BUdR) immunofluorescence
technique.27'28 As expected in
a tumor composed mainly of terminally differentiated
B cells
(ie, plasma cells), the labeling index after in vitro pulse
exposure is usually low, with average values of 1% at
diagnosis and higher values at relapse.29 Both autoradio-
graphic and BUdR techniques
have identified even lower
labeling indices in patients with monoclonal gammopathy
of
unknown significance (MGUS) and indolent myeloma.3#{176}32 A
similar discrimination
also resulted from the study of B
lymphocytes
in peripheral blood.32'33 In patients with symp-
tomatic myeloma, higher values of plasma-cell labeling index
were associated with shorter survival time, independent
of
tumor mass.336
Relative to values at diagnosis, tumor cell-growth fraction
(determined
from tritiated thymidine administration
in vivo)
was much higher during relapse,37 when in vitro colony
growth is also more successful.
The recent availability
of
antibodies
that distinguish
different DNA precursor mole-
cules (BUdR and IUdR) permits a more expedient immuno-
fluorescence-based
analysis by flow cytometry of cell-cycle
time parameters
and growth fraction (J Gray, personal
communication,
June 1988). Several studies are currently in
progress in myeloma and other malignancies
to define the
value of Ki-67 monoclonal
antibody (MoAb) as a means of
assessing the fraction of cells capable of cell prolifera-
tion 38,39
Consistent
with the low proliferative
activity of typical
plasma-cell
myeloma,
attempts
at establishing
long-term
From the University of Texas M.D. Anderson Cancer Center.
Department ofHematology.
Houston.
Submitted September 20. 1988; accepted November 18, 1988.
Supported in part by Grants CA37161 and CA28771 from the
National Cancer Institute, National Institutes ofHealth, Bethesda.
MD.
Address reprint requests to Bar: Barlogie. MD. Department of
Hematology. M.D. Anderson Hospital & Tumor Institute, Univer-
sity of Texas Box 30. 1515 Holcombe Blvd. Houston. TX 77030. itt 1989 by Grune & Stratton, Inc.
0006-4971/89/7304-0021$3.00/0
Blood, Vol 73, No 4 (March), 1989: pp 865-879
865
866
Cytogenetic Abnormality
Hypodiploidy
t (8;14)
6q7q Trisomy
(q24;q32)
11
Table 1. Clinically Relevant Chromosomal Anomalies
% Incidence
Associations
10 Only Bence Jones protein
Primary drug resistance
<5 IgA
15 Lytic bone disease ? Drug resistance, site of mdr gene 10 Decreased p21 (H-ras) levels
BARLOGIE ET AL
Reference 17
21 17 22 23 111
cultures have met with limited success, so that only about a
dozen human myeloma cell lines are now available, often
with unusual phenotypic
features typical of earlier stages of
maturation."#{176} Similar problems were met in sustaining short-
term cultures for the study of in vitro drug sensitivity.41'42
Systematic
laboratory efforts by Dune et al (BGM Dune,
personal communication,
October 1987) have since led to the
recognition that monocytes and CD4-positive
I cells provide
important stimuli for in vitro growth of plasma cells and their
precursors, while CD8-positive
suppressor I cells seemed to
inhibit growth. Employing
a double-layer
agar technique
with irradiated
HL-60 feeder cells, Millar et al.43 reported
successful
myeloma
colony growth in almost 90% of
patients.
Several cytokines are involved in the proliferation
and
differentiation
of normal munine and human B cells.'45
After B-cell activation
by interleukin-4
(IL-4)''47
and
expansion by interleukin-5
(IL-S),48 B-cell stimulatory
factor
2 (BSF-2) induces the final maturation of B cells into
immunoglobulin-secreting
plasma cells.49 Based on studies of
DNA sequence homology, BSF-2, intenfenon-beta-2,
and
hybnidoma-plasmacytoma
growth factor represent the same
cytokine that is now termed interleukin-6
(IL-6).50'5' Pro-
duced by monocytes, fibroblasts, and 1-cell lines, the domi-
nant action of IL-6 is the differentiation
of activated B cells,
although effects on normal hematopoietic
stem cells (in
concert with IL-3) have also been reported.52'53 IL-6 probably
accounts for the promotion of human myeloma growth by
conditioned
medium from adherent spleen cells when Balb/c
mice were primed by intrapenitoneal
injections of pnistane or
mineral oil.4' The recent demonstration
that fresh myeloma
cells produced IL-6 constitutively
and expressed IL-6 necep-
ton (IL-6R), with stimulation
of DNA synthesis by exoge-
nous IL-6 in some cases has suggested
that IL-6 may
function as an autocnine growth factor.54 This observation
has been questioned
by Klein et al,55 who noted that IL-6
activity resided entirely in bone marrow-adherent
cells and
favored a paracnine growth mechanism.
These authors had
previously
reported an autocnine
function for BCGF II
(IL-5) in human RPMI 8226 cells.56 Investigating the molec-
ular basis of growth factor and receptor gene activation
should clarify the pivotal mechanisms
involved in the abnor-
mal proliferation
and maturation
of plasma-cell
myeloma.
Tumor Phenotype
While an individual patient has fairly uniform plasma cell
morphology,
there is moderate
heterogeneity
among dif-
ferent patients. The Mayo Clinic group has distinguished
between plasmacytic, lymphoid, and plasmablastic variants
with progressively
increasing
labeling index and adverse
prognosis.30'57
As a tumor perceived
to be composed
of
terminally differentiated
B cells with commitment
to immu-
noglobulin production and secretion, plasma-cell myeloma is
composed mainly of cells that contain monoclonal cytoplas-
mic immunoglobulin.58
Monoclonal clg expression by diploid
cells in about 20% of patients with DNA-aneuploidy
mdi-
cated the presence of DNA-biclonality
that was also asso-
ciated with resistance to chemotherapy.2'
Surprising was the
coexpression
of both kappa and lambda light chains in the
same DNA-aneuploid
tumor cells in about 15% of patients,
usually with IgG lambda isotype.58 The molecular basis of
these aberrations
from the current dogma of exclusive kappa
or lambda light-chain expression and their association with
gamma heavy chains remains to be clanified.59'#{176}
Consistent
with their major commitment
to protein
secretion, myeloma cells contain high levels of RNA, an
average six times more than unstimulated
lymphocytes.61'62
Exploiting the metachromatic
properties of acnidine orange,
cellular DNA and RNA content can be measured simulta-
neously by two-parameter
flow cytometry quantitating
green
(double-stranded
DNA) and red fluorescence
(single-
stranded RNA).63 The detection of aneuploidy also in blood
provided direct evidence for circulating
tumor cells,25 long
suspected on the basis of monoclonal
idiotype-concordant
blood lymphocytes"
capable of plasma-cell
differentiation
in vitro.67 Thus disease progression and spread may occur by
the hematogenous
route, with specific tumor localization
enforced by marrow-derived
monocytes and I cells providing
growth-stimulating
factors.47'49'55
In addition to facilitating the quantitation
of marrow
plasmacytosis,
flow cytometnic studies of nucleic acids have
provided useful prognostic
information.68
Thus no patient
with DNA-hypodiploidy
has ever responded
to standard
melphalan-prednisone
or VAD; and higher response rates
have been observed with increasing cellular RNA content.
As with nuclear DNA, plasma-cell RNA index remained
stable throughout
a patient's disease and declined only rarely
with relapse. Therefore the undoubted clonal evolution that
produces drug resistance was not reflected in changes of
cellular DNA and RNA content. Occasional
mixed clinical
responses to therapy could be traced to different DNA
stemlines present in different disease sites.
While the majority of tumor cells have plasma-cell
fea-
tunes, self-renewal
must be sustained by stem cells earlier in
the maturation
sequence.67'69'7#{176}Several groups have searched
for the expression of early B, I and myelomonocytic
mark-
ens.7'72 In almost 50% of patients, the pre-B antigen common
acute lymphoblastic
leukemia antigen (CALLA)
was
PLASMA CELL MYELOMA-INSIGHTS
AND ADVANCES
Table 2. Duff. rentiation
Phenotype
Calla +
% Incidence
50
Myelomonocytic
13
T-antigen
?
TCR-9amma rearranged LDH
40 50
and Lineage Infidelity
Comment
Coexpression with
cIg and good
prognosis
Poor prognosis Poor prognosis
when two myeloid markers
present
Coexpression
with
cIg and my-
eloid markers
No clinical correla-
tion
High levels in terminal disease phase with lym-
phomalike features and poor prognosis
Reference
72
73 74
74
102 1 14
expressed in a large fraction of tumor cells (Table 2).72 The
coexpression
of CALLA and monoclonal
clg by the same
aneuploid tumor cells unmasked a novel tumor-cell phenotype without known counterpart in normal B-cell differentia-
tion (Fig 1). Such differentiation
infidelity was also shared
by the mature plasma-cell
antigen Rl-3, which was jointly
expressed
with CALLA
in about 40% of patients.
The
consistent presence, in all cases of DNA-aneuploid
myeloma,
of CALLA-positive
cells with diploid DNA content (but
867
without clg expression)
raised the possibility that diploid
precursor cells generated the aneuploid plasma cells. Sub-
populations
of cells with CALLA/
cIg, CALLA/cIg,
and CALLAjcIg
may represent
different
maturation
stages of plasma-cell
myeloma. The authors have observed a
more favorable clinical course in patients with CALLA
expression, while others have concluded that this phenotype
was harmful.73
Myelomonocytic
antigen expression was reported recently
in 1 3% of patients with myeloma (Table
Those with
dual myeloid antigen expression (M5 and MY7) also showed
1- and early B-cell features, high labeling index, and a poor
prognosis. As expected from frequent elevations of serum
beta-2-microglobulin
(B2M) level, most patients showed
tumor cell-surface
expression of B2M.72 Both surface expres-
sion and serum levels of B2M can be augmented
after
treatment with interferon-alpha,
although correlations
with
clinical response have not been detected (Epstein J, Barlogie
B, Alexanian R, unpublished observations, June 1988).
Thus myeloma is a disease in which the majority of tumor
cells are aneuploid with a differentiated
B-cell phenotype but
with subpopulations
that also express early B, possibly 1, and
even myelomonocytic
features. The additional
presence of
diploid cells with an immature
phenotype
suggests that
aneuploid
myeloma originates
from a stem cell with a
different (ie, diploid) DNA complement.72
While differen-
tiation and lineage infidelities may reflect merely malignan-
cy-associated
aberrations,
they may indicate alternatively
that transformation
involved a plunipotent
stem cell with a
flexible pattern of gene expression.
More specifically,
the
asynchrony
of antigen expression in myeloma may reflect
``"T''
j-
I I
Fig 1 . Phenotypic
hetero-
geneity in a patient with hyperdiploid multiple myeloma. Hyperdi-
ploid cells have high RNA
content; react with anti-B2M, J5,
and Ri -3 and show monoclonal
clgA kappa expression.
Diploid
cells have low RNA content with-
out monoclonal clg reactivity but
express B2M and CALLA. Abscis-
sa. DNA content; ordinate, fluo-
rescence intensity of cellular fea-
ture.
o.
CIgA
B2
c DeA cea
R1-3 CIgA
868 BARLOGIE ET AL
Table 3. Factors Produced by Myeloma Cells
Factor
Comment
Reference
IL-i beta TNF-beta TNF-alpha
BCGFII (IL-5)
lL-6 B2M
OAF, chromosome 2q; autocrine growth factor?
OAF, chromosome 6p2 1 Autocrine growth factor in CLL, HCL;
not evaluated in myeloma; on chromosome 6p2 1 Myeloma cell line (RPMI 8226)-autocrine growth factor (?); chromosome 5q23.3-q32 Myeloma cells and marrow-adherent cells Increased in most patients; poor prognosis with high serum levels; chromosome 1 5q2 1-q22
78 79 77 80
56
54 55 138-141
abortive differentiaton
during an ordered rather than sto-
chastic hematopoietic
development
with sequential commit-
ment to megakaryocytic,
erythroid,
myeloid, and, finally,
B-cell lineage.76 The demonstration
of erythroid or mega-
karyocytic antigens on myeloma cells would support such a
model (Epstein J, Banlogie B, unpublished
observations,
December 1988).
Consistent
with the variety of disease features, myeloma
cells produce many cytokines in addition to immunoglobu-
lins. Osteoclast-activating
factors have been identified as
TNF-beta (lymphotoxin) and IL-l-beta (Table 3)77.79 While
usually undetected
in mature B cells, the continued expres-
sion ofTNF-beta
and IL-l-beta by myeloma cells78 suggests
a role for those proteins in abnormal growth and differentia-
tion, also invoked for IL-5 and IL-6.54 Indeed, TNF can act
as a tumor growth factor and can promote cell proliferation
in two other related B-cell malignancies,
namely hairy cell
and chronic lymphocytic
leukemia.8#{176} Receptors
for IL-5
(BCGF II) and IL-6 on myeloma cells may provide targets
for therapy with immunotoxins
or radioisotopes.
Myeloma
cells also express receptors for vitamin D3 , glucocorticoids,
and sex hormones (estrogens and progestins; Table 4)#{149}81.84
Future studies should clarify the biological functions and
implications
of these receptors in the different B-cell tumors.
In view of the clinical use of glucocorticoids85 and alpha-
interferon,86 correlations of response with receptor expression
are important.81'87 Immunodeficiency
mainly of B-cell, and less profoundly
and frequently of 1-cell, type is responsible
for recurrent
infections, usually of bacterial origin.88'89 In munine plasma-
cytoma, B-cell suppression
has been traced to a plasma-cell
factor that causes monocytes and macrophages
to produce a
suppressor of normal B-cell proliferation#{176}; a similar factor
has not yet been identified in humans. An alternative mecha-
nism concerns the suppression of normal B cells by immuno-
globulin-binding
factor (IgBF), which may be identical to
the Ig-Fc receptor shed by I cells.9' In the munine MOPC-
3 1 5 model, IgA-binding
factor produced by IgA-induced
I
cells reacted with surface IgA on MOPC-3 1 5 cells; this
resulted in the inhibition
of both tumor growth and Ig
production
by the suppression
of myc and Ig gene tran-
scniption, respectively.92
The resistance to cytotoxic drugs poses a major obstacle to
the successful management of myeloma and other neoplastic
diseases. Refractoriness
to multiple antitumor
agents after
exposure to one drug is referred to as MDR, a feature that
eventually The MDR p-glycoprotein
becomes dominant
in cultured tumor cells.23'93
phenotype has been linked to the presence of a
(pl7O) that functions as an effiux pump for
certain anticancer agents, such as anthracyclines
and ymca
alkaloids.94'95 Using the MoAb, C219, which recognizes the
cytoplasmic
domain of p170,96 high levels of MDR expres-
sion have been observed in myeloma cells and have been
linked to clinical resistance to the VAD regimen.97 Such
resistance has been overcome with the calcium channel
blocker, verapamil,98 presumably by retaining higher cellular
levels of adniamycinY The frequency and degree to which
VAD resistance can be overcome with verapamil is now
under study.'#{176}#{176}
Molecular Genetics
Studies of immunoglobulin
gene rearrangement
(as the
molecular
hallmark
of a B-cell tumor) may explain the
phenotypic
heterogeneity
and differentiation
infidelity of
myeloma.53 As expected, H rearrangement
could be detected
in proportion to the degree of marrow plasmacytosis.
Multi-
Receptor for BCGFII (lL-5) lL-6
Interferon-alpha Glucocorticoid
Estrogen, progesteron Vit D3
Table 4. Receptors Expressed on Myeloma Cells
Comment
Cell lines, autocrine mechanism (?)
Cell lines and fresh samples; me-
diates autocrine or paracrine
mechanism
Active against low-mass disease;
chromosome
2 1q2 1
Cell lines and fresh samples; correla-
tion with clinical response to glu-
cocorticoids
not yet established;
chromosome Sql i-q13
Biological effects (?); chromosome
6q24-q27 (ER) and 1 1q13 (PR)
Mediates inhibition of proliferation
and induction of new phenotypes
by Vit D3
Reference 56
54
7 86 81 85
83 84 82
PLASMA CELL MYELOMA-INSIGHTS
AND ADVANCES
869
pie rearranged
bands were noted in only 5% of patients,
indicating that clonal evolution was reflected rarely at the
immunoglobulin
gene level (Selvanayagam
P. unpublished
observations,
September
1988). The concurrent
rearrange-
ment of Cu and JH genes in some patients resulted either
from different tumor clones in different stages of B-cell
maturation
or from the coexpression
of normally unasso-
ciated phenotypes.
The authors' finding of clg kappa coex-
pression in IgG lambda myeloma
was confirmed
at the
molecular
level, with Ck rearrangement
present in some
patients with lambda light-chain
production.
Since early stem cells may be the source of myeloma,
analysis was also carried out of 1-cell receptor genes, which
are part of the immunoglobulin
supergene family. Surpnis-
ingly, 35% of patients showed 1cR-gamma
rearrangement,
while 1cR-beta
and 1cR-alpha
genes were not affected.'#{176}2
Identical frequencies of rearranged bands with 1cR-gamma
and JH probes supported the neoplastic origin of 1cR-gamma
rearrangement.
In a survey of HLA-associated
gene expression in human
B-cell malignancies, invariant chain messenger RNA (In-
mRNA) as well as HLA DR-alpha and HLA DR-beta-chain
mRNA were expressed in all patients with either acute or
chronic lymphocytic
leukemia.'#{176}3 In contrast, only three of
1 5 patients with myeloma demonstrated
In-mRNA
expres-
sion. Thus the In gene was expressed in neoplastic cells early
in the maturation
sequence, concurrent
with the activation of
other genes encoding histocompatibility
class II antigens,
and preceded the activation of immunoglobulin
genes.'#{176}
While advances in chromosomal
banding and molecular
techniques
have clarified the role of cellular oncogenes in
some B-cell lymphomas
and leukemias,
the difficulty in
obtaining adequate metaphase chromosomes
and the dearth
of specific karyotypic
aberrations
have hindered similar
progress in plasma cell myeloma. With the presumption
of
pre-B-cell involvement in human myeloma72 and the regular
c-myc gene deregulation
in murine plasmacytoma,'#{176}5"#{176}
c-myc and other oncogenes implicated
in malignant
lym-
phoma have been studied also in human myeloma (Table 5).
High levels of c-myc RNA expression were observed in 25%
of patients, without apparent abnormalities
of myc RNA
transcript
size.'#{176}A7 s with t(8;14) chromosomal
transloca-
tions, myc gene activation
was found more commonly
in
patients with IgA isotype but resulted only rarely from DNA
rearrangement
and was not associated with DNA amplifica-
tion.'#{176A}8nalogous to recent observations in Burkitt's lym-
phoma, Meltzer et aV#{17r6e}ported mutations in the 3' region of
the first c-myc exon (Pvu II and Alu I endonuclease sites) in
ten of 16 human myeloma samples and cell lines; we have not
confirmed
this observation.
None of 60 patients
with
Table 5. One ogenes in Plasma -Cell Myeloma
Abnormality
Rearrangement Amplification Deletion High mRNA High protein
expression expression
c-myc
4/120 0/120 0/120 9/37
ND
L-myc bcl-1 bcl-2
0/22 5/1 20 0/60
0/22 0/120
0/60
2/22 0/1 20 0/60
ND 0/40
0/40
ND ND
ND. not done.
c-H-ras
0/40 0/40 ND ND 17/23
myeloma
showed rearrangement
of bcl-2 (commonly
involved in follicular lymphoma),
consistent with the rarity
of t(14;18) translocation
in myeloma. Five of 120 patients
had rearrangement
of bcl-I but without corresponding
mRNA elevation."0
Careful scrutiny of chromosomal
breakpoints
disclosed
frequent involvement
of the short arm of chromosomes
1 and
1 i,' where Kirsten-ras
and Harvey-ras
genes are located.
Using pan-ras and H-ras antibodies with flow cytometry,
17
of 23 patients with active myeloma had high p2 1 expres-
sion)" An inverse relationship
between p21 levels and
tnisomy 1 1 suggested that suppressor genes were present on
chromosome
1 1.h12 The frequent elevation of p21 protein
indicated that H-ras oncogene is involved in the pathophysi-
ology of myeloma,
as supported
further by the shorter
survival time of patients with high p21 levels." The mecha-
nism of H-ras gene activation is currently under scrutiny,
especially in regard to gene mutation as the commonest
mechanism of nas gene activation in other human tumors.
Biology Summary and Future Projections
Cytogenetic
and molecular data indicate the presence in
myeloma of DNA rearrangements
similar to those observed
in malignant
lymphoma.
Such chromosomal
translocations
presumably
result from recombination
errors during immu-
noglobulin gene rearrangement
(ie, B-cell commitment)
with
activation ofjuxtaposed
oncogenes."3
Phenotypic evidence of
differentiation
and even lineage infidelity, with coexpression
on terminally
differentiated
B cells of early B,72 myeloid,74
and 1-cell markers74 may reflect abortive differentiation
in
the process of an ordered sequential rather than a stochastic
lineage commitment,
thus placing the oncogenic events in
myeloma possibly to an early stage in hematopoiesis.76
Disease evolution has not been studied systematically.
Preliminary
data suggest disease dedifferentiation
occasion-
ally with cessation of myeloma protein secretion and produc-
tion instead of high levels of serum lactic dehydrogenase
(LDH) during the terminal phase of disease transforma-
tion."4 Similarly, the development
of acute myeloid leuke-
mia in up to 25% of patients 10 years after diagnosis of
multiple myeloma has occasionally
been interpreted
as a
natural disease evolution rather than as a treatment-induced
secondary
malignancy,"5
thus supporting
the notion of
myeloma as a tumor arising early during hematopoietic
differentiation
(Fig 2).
Sequential
investigations
during the disease course of
individual patients are likely to reveal a progressive expan-
sion of myeloma progenitor
cells with higher proliferative
activity and earlier phenotypic
characteristics.
Such infor-
mation can then be used to probe for the presence of such
features in rare cells earlier in the disease course.
Studies of human plasma-cell
lines suggest that BCGF II
(IL-5) may be an autocrine growth factor in some patients
with myeloma.56 Receptors for IL-6 (BSF-2) may mediate
the biological activity of IL-6 produced mainly by bone
marrow-derived
monocytes (paracrine mechanism)55
and/or
by the tumor cells themselves
(autocrine
mechanism).54
In
view of the three-signal
model advanced by Kishimoto"45
for
870 BARLOGIE ET AL
Myeloma Cell Phenotype, Kinetics, and Drug Sensitivity
S 8
g
55
55
Fig 2. Model of myeloma ontogeny. On the basis of available
phenotype and molecular data (see text), a DNA-diploid myeloma
stem cell early in hematopoiesis
is postulated with sequential
abortive commitment
to megakaryopoiesis,
erythropoiesis.
granu-
lopoiesis, and, finally. B-cell lineage. Terminally differentiated B
cells (plasma cells) represent the dominant tumor phenotype,
usually with DNA-aneuploidy
and frequently
asynchronous
expression of earlier stages of differentiation.
Proliferation
is
highest at an early commitment stage with greater sensitivity to
melphalan. whereas plasma cells (producing a variety of cytokines)
are kinetically inactive and highly sensitive to glucocorticoids.
the activation, proliferation,
and differentiation
of normal B
cells by IL-4, IL-S and IL-6, these lymphokines
probably
play an important role in sustaining the growth and differen-
tiaton anomalies
of human myeloma.
For example, the
production by tumor cells of IL-l,78'79 TNF,77'8#{176a}nd IL-4 or
IL-556 may sustain both an autocnine growth-stimulatory
loop and IL-6 production
by bone marrow monocytes,55
promoting the differentiation
of earlier B cells into plasma
cells. Abnormal differentiation
with lineage infidelity (pres-
ence of myeloid and 1-cell markers on plasma cells) suggests
that receptors for B-cell growth and differentiation
signals
may also be expressed aberrantly.
Comprehensive
studies, at
the single-cell level, of cytokine production
by tumor cells,
lymphokine
receptor expression, proliferative
activity, hema-
topoietic lineage, and phenotype stage are required to clarify
these questions.
Multiparameter
flow cytometry81'87
and
image analysis, together with in situ hybridization,
are
suitable research tools for such investigations.
The key trigger to self-sustained and ultimately relent-
lessly progressive plasma-cell
accumulation
is likely to result
from the abnormal expression of normal cellular genes by a
variety of possible mechanisms,
such as gene rearrangement,
mutation,
and/or lack of suppressor
gene activity due to
deletion of critical "antioncogenes."
` 12 High myc expression,
usually without DNA rearrangement,
in about one quarter
of patients suggests that point mutations may be the major
cause, resulting in impaired nuclear protein binding to myc
DNA sequences and consequently uncontrolled growth, as in
Burkitt's
6 Mutational
activation of H-ras unop-
posed by controlling sequences on chromosome
1 1 may be an
additional or separate mechanism of abnormal growth.
ETIOLOGY
In the mouse, an oil granuloma induces a preneoplastic
chronic inflammation
that progresses to plasmacytoma
with
myc gene deregulation'#{176}; in contrast, the etiology of human
myeloma
remains elusive. Several oncogenes
(c-myc and
H-ras) appear to be involved, but their link to the initiation
and progression of myeloma is unclear. Radiation exposure,
long known to induce myeloid leukemias and certain solid
tumors, has sometimes
led to myeloma
1 5 to 20 years
h7121 Other epidemiologic
surveys have demonstrated
an association with benzene'22 and asbestos,'23 as well as with
certain agricultural
occupations.'24"25
Severe immunosup-
pression with organ transplantation,
while inducing B-cell
lymphoma,
has rarely led to plasma-cell
myeloma.'26 Simi-
larly, while B-cell lymphomas
have been recognized
as a
manifestation
of the acquired immunodeficiency
syndrome
(AIDS), associations between human immunodeficiency
virus (HIV) infection and myeloma remain anecdotal.'27"28
Only about 10% of persons with benign monoclonal gammo-
pathy (one of the few benign disorders
with DNA-
aneuploidy of plasma cells25) develop myeloma after at least
10 years of follow up.2 The persistence of a low-level mono-
clonal protein after marrow-ablative
chemoradiotherapy
for
myeloma in remission suggests that a benign gammopathy
often precedes myeloma and is resistant to supralethal
doses
of therapy because of the low proliferative
activity of BMG-
associated plasma cells.'29
The presence of tumor cells in peripheral blood is relevant
to an understanding
of disease progression
and has been
suggested
by several studies, including
(1) isotype-con-
cordant surface immunoglobulin
expression
by idiotypic
lymphocytesTM'65; (2) differentiation
of CALLA-bearing
pen-
pheral B cells to monotypic
plasma cells in vitro63; (3)
circulating
DNA-aneuploid
cells20; and (4) presence of
immunoglobulin
gene rearrangement
in blood.66 Werne et
30 examined the ratio of kappa- and lambda-positive
lymphocytes
in blood and noted the phenomenon
of light-
chain isotype suppression
in stable phases of disease, con-
trasting with isotype predominance
during disease pro-
gnession.
DIAGNOSIS AND STAGING
Solitary and Indolent Myeloma
Solitary plasmacytoma
of bone or soft tissue,'3' indolent on
smoldering
myeloma,3'4"32
and symptomatic
generalized
33 represent distinct clinical phases in the spectrum
of plasma-cell myeloma (Table 6). The occurrence by chance
of a painful pathologic fracture from a single tumor mass
apparently
allows the recognition
of this disease about 5
years earlier than otherwise possible. Provided strict criteria
for staging are applied, local radiotherapy
appears to be
curative in about one half of the patients. Staging criteria
include no signs elsewhere of monoclonal plasmacytosis
(best
by DNA-clg flow cytometry),
lack of other bone lesions or
abnormalities
on sensitive radiographic
examinations
(com-
putenized axial tomography [CAT] and nuclear magnetic
resonance),
and preservation
of normal immunoglobulin
PLASMA CELL MYELOMA-INSIGHTS
AND ADVANCES
levels. Less rigorous criteria probably explain the divergent
conclusions
reached in regard to the natural history of this
entity. Following radiotherapy,
abnormal globulin levels are
usually reduced markedly,
indicating
that the localized
disease was encompassed
by the radiation field. However,
low monoclonal
protein levels may persist indefinitely
in
some patients, indicating residual plasma cells that remain
dormant in a manner analogous to BMG. Some localized
plasmacytomas
are radioresistant
(eg, those with DNA-
hypodiploidy
or with low RNA content), portending
resis-
tance to later chemotherapy
and a poor prognosis.68 The
curability of localized plasmacytoma
in a substantial
propor-
tion of patients indicates that myeloma arises from a single
focus; the persistence
of monoclonal
gammopathy
without
later evolution of generalized
disease suggests that BMG is a
preneoplastic
entity, requiring additional factors to progress
to myeloma.
A similar explanation
may pertain to the
persistence of low levels of abnormal globulin after high-dose
consolidation
therapy for responsive multiple myeloma.'29
When a solitary lesion is not associated with bone destruc-
tion (ie, perhaps because IL-l or TNF-beta
production
is
low), generalized
myeloma may develop and progress slowly
without symptoms.
Only a chance electrophoresis
leads to
the diagnosis of such indolent or smoldering disease. Similar
to patients with early phases of CLL or nodular lymphoma,
chemotherapy
is unnecessary
until morbidity
occurs or
becomes imminent (ie, myeloma protein >5 g/dL or new
bone lesions). The similar prognosis of patients treated many
months after diagnosis to that of the usual patient treated
promptly indicates that drug-resistant
tumor cells have not
expanded. A low plasma-cell labeling index can predict an
indolent disease course in asymptomatic
patients,30'31'32 many
of whom live longer than 10 years after diagnosis.6"32
Clinical Staging ofSymptomatic
Myeloma
Different centers have defined the extent of myeloma from
variations of a schema that considers the degree of anemia,
hypercalcemia,
and other disease features.'33"34 Based onigi-
nally on a system devised from direct measurements
of total
myeloma mass,'35 increasing tumor burden has been asso-
ciated with shorter survival time.'36 Although the application
of different criteria for staging by different centers has
prevented a meaningful
comparison
of treatments
between
groups, the consistent use within a center or group has
allowed more reliable comparisons of new treatments with
historical treatments.
Recent studies have improved further the reliability of
staging systems. Thus the serum level of beta-2-micnoglobu-
lin (B2M), by reflecting both tumor mass and renal function,
offers a single measurement
that provides as clear a separa-
tion of risk groups as any staging system.'38"4' Among 100
previously untreated patients, the authors found progressive
shortening of survival time for patients with increasing B2M
levels.'42 Other studies have revealed that the extent of bone
lesions is an unreliable index of tumor load, that renal failure
occurs much more often with advanced disease, and that the
extent, morphology, and DNA/RNA
content of marrow
plasma cells are important factors. For example, the shorter
871
Ta ble 6. Diagnosis and Staging
Diagnosis
MGUS Indolent myeloma
Overt myeloma
Differentiating Parameters
Normal bones, Hb, Ca, Ig;
Marrow plasmacytosis
<10%
Labeling index < 1%
Few lytic bone lesions without fractures
Normal Hb, Ca, Ig;
Marrow plasmacytosis
<20%
Labeling index <1%
B2M <4. 4-6, >6 mg/L
Dune-Salmon
Staging System
Marrow plasmacytosis <20, 20-40, >40%
survival of patients with plasmablastic
myeloma may be
related to higher proliferative
activity,30 confirmed in several
clinical trials to shorten survival independent
of tumor
ma5534,35'43 or B2M levels.'44
In studies evaluating the role of high-dose alkylating agent
therapy for VAD-refractory
myeloma, the authors observed
high-serum
LDH levels of >300 U/L prior to or within 2
weeks after therapy in about one half of patients."4
High
LDH conferred a rapidly progressive course with lympho-
malike clinical features, in a manner similar to that seen in
patients with the blast phase of chronic myelocytic leukemia
or with transformed
lymphoma.
Thus high LDH seems to
define a high-grade myeloma as a result ofclonal evolution to
a more undifferentiated
tumor-cell
phenotype
and/on by
progressive expansion of drug-resistant
tumor cells. ` ` Quan-
titative studies of tumor-cell LDH content should distinguish
these alternatives
(Van NT, Epstein J, Barlogie B, unpub-
lished observations,
December
1988). Preliminary
data in
100 previously untreated
patients also showed that high
LDH levels occurred more frequently with renal failure and
portended a poor prognosis.'42
Thus there are now a variety of quantitative
and tumor
cell-derived
parameters
that correlate with prognosis (Table
7). From a large retrospective
analysis of previously
untreated patients who received similar chemotherapy,
the
dominant
variables associated
with distinct clinical
points were determined,
eg, (1 ) absolute resistance
endwith
DNA hypodipoloidy
and lower remission rates with low
plasma-cell
RNA index and high B2M serum levels; (2)
shorter remissions with high serum-LDH
and low plasma-
cell RNA index; and (3) short survival in patients with high
serum-LDH
and B2M levels (Table 8). The importance
of
similar and mainly tumor-intrinsic
parameters
for both
remission induction and long-term prognosis emphasizes
the
dominant role of marked cytoreduction
from initial therapy
in each patient's ultimate outcome.
The authors envision that, as in the leukemias and lympho-
mas, cytogenetic
and molecular disease entities will eventu-
ally be defined that are associated
with unique clinical
presentations
and prognosis.
Meanwhile,
relationships
among the recognized prognostic factors should be clarified,
so that the adverse effects of high LDH,"4 low CALLA
expression,72 high H-nas activity,' ` ` myelomonocytic
pheno-
type,74 and high proliferative
activity'
can be traced to few
critical biological features to be exploited therapeutically.
872
Table 7. Prognostic Factors in Myeloma
Endpoint
Adverse Pretreatment Variable
Reference
Response Time to relapse Survival time
-DNA -Low
hypodiploidy RNA index
-High tumor mass
-High B2M . . . MDR expression -Low RNA index
-High B2M
-High tumor mass
-High LDH
-High B2M
-High tumor mass
-High LDH
-High labeling index
. . . Low RNA index . . . DNA hypodiploidy
. . . CALLA-negative
. . . Butyrate esterase-
positive . . . H-ras expressed
68 68 68 142 97. 100 142
138- 143 1 36 and many others
114 34, 35, 144
68 68 72 74
111
- , established; . . . . suggested.
OBJECTIVES OF THERAPY
The degree of cytoreduction achieved in most responsive
patients rarely exceeds 99%#{149}I45With most available treat-
ments, disappearance
of myeloma protein is evident in only
about 10% of those with IgG or IgA peaks, but is evident in
about 60% of those with only Bence Jones protein, so that the
overall frequency of "complete remission" is about 20%.
Rigid criteria for disappearance
of abnormal protein should
include immunoelectrophoresis
and immunofixation
tech-
niques. Most centers define a response either as a 50%
reduction in myeloma protein concentration'
or as a 75%
reduction in M-protein synthesis'4"48
with disappearance
of
Bence Jones protein (as in this review). The speed of cytore-
duction, calculated
from changes in IgG or IgA myeloma
protein, varies with different treatments.
Thus in responding
patients, the median time required for a 50% reduction in IgG or IgA myeloma protein was much shorter with primary
VAD (0.4 months) or VCAD-VAD (0.9 months), than with
VCAP using bolus vincnistine-adniamycin
(1 .2 months) or
standard melphalan-prednisone
(2.2 months). High-dose
melphalan
with total body irradiation
achieved the most
rapid cytoreduction
with protein levels declining in accon-
dance with their expected plasma clearance.
The remission time of responding patients with multiple
Table 8. Multivariate Analysis of Prognostic Factors Among 100 Patients Treated at MD Anderson Cancer Center
Endpoint Response
Relapse-free
survival
Survival
Adverse Variable In Order of Entry
Low RNA (<4) High B2M (>6 mg/L) LDH (>200 U/L) RNA(<4) High LDH (>200 U/L) High Mass (Dune-Salmon) High B2M (>6 mg/L)
P
.001 .001 .05 .06 .001 .09 .10
BARLOGIE ET AL
myeloma has been overlooked as an important endpoint. Few
published reports have included this feature in the compani-
son of different treatments.
Now that effective treatment
alternatives
for remission induction and consolidation
are
available, remission time assumes more importance
in com-
paring treatments.
Disease relapse may be detected early in
most patients
from rising myeloma
protein levels. The
median tumor-doubling
time for patients with IgG on IgA
myeloma protein is about 2 months, with more rapid relapse
in those who responded rapidly. In recent years, and espe-
cially after VAD, more patients have been recognized with
"phenotypic
escape."49
Most commonly this is manifested
by increasing
bone marrow infiltration
with progressive
anemia, bone destruction,
hypercalcemia,
and rising B2M
and LDH levels, despite low or even absent levels of myeloma
protein. Transformation
to a more aggressive
malignancy
with rising LDH has been associated with disease in lymph
nodes, liver, brain, or blood."4 Whether such patients are
more likely to develop karyotypic
or phenotypic
changes
from those present at diagnosis is not clear. The role of new
therapies,
such as VAD and/or high-dose
melphalan,
in
causing such changes or allowing them to become manifest
because of survival prolongation needs to be assessed.
TREATMENT
For the past 25 years, intermittent melphalan-prednisone
(MP) has been the therapy ofchoice for multiple myeloma in
community practice. Extensive clinical trials with other drug
combinations
have not shown a major improvement
in dis-
ease course.'50"5' Since the details of numerous clinical trials have been summarized elsewhere,'2"3 this review will focus
on those studies promising substantial
future gain. Since
these treatments
were developed first for refractory
disease,
effective salvage regimens will be reviewed prior to discuss-
ing their role as initial therapy.
Effective Salvage Regimens
VAD and dexamethasone.
Not until the introduction
of
VAD (combining pulses ofhigh doses ofdexamethasone
with
continuous
infusions of vincnistine and adniamycin)
were
there frequent, marked, and durable tumor cytoneductions
in
patients resistant to standard therapies.'52
Dexamethasone
alone was also effective,85 but VAD induced more frequent
remissions in patients with relapsing disease or with primary drug resistance of less than 1 year duration, provided favor-
able DNA/RNA
features of plasma cells were present
(Table 9). A longer duration of primary resistance was
associated with DNA-hypodiploidy
or low plasma-cell
RNA
index in nearly one half of the patients, providing one
biochemical
explanation
for such resistance.
The greaten
efficacy of VAD than dexamethasone
among relapsing
patients was attributed to the greaten sensitivity of proliferat-
ing tumor cells to the cycle-active
drugs vincnistine and
adriamycin.
Identical to studies in newly diagnosed patients,
a high serum B2M level (> 6 mg/L) was the dominant
adverse feature for survival time.'52
High-dose melphalan and total body irradiation with
bone marrow transplantation.
To date, 65 patients with
PLASMA CELL MYELOMA-INSIGHTS
AND ADVANCES
Table 9. Response to Salvage
Treatment
DEX VAD HDM<9Omg/m2 HDM9O-i4omg/m2 HDM 140 mg/rn2
+ TBI
Not hypodiploid and RNA inde x 4.
Treatment Related
Resistant to MP MP
MPandVAD MPandVAD MP and VAD
to Dur ation of Primary Resistance and to DNA-RNA Fe atures
% Responding (No. Treated)
Unresponsive for 12 months + Favorable DNA/RNA
Other
32(28) 56(32) 67(12) 47(i5) 77 (13)
17(18) 14(14)
0(8) 53(15) 100(2)
873
VAD-nefractory
myeloma have been treated with high dose
melphalan
(HDM),
either alone'53"54 or with total body
irradiation8
(TB!; 850 cGy in five fractions 1 2 hours apart)
and supported with autologous bone marrow. The latter was
harvested, whenever possible, during an earlier remission
phase and contained less than 30% plasma cells. The ration-
ale for autologous
marrow transplantation
in this marrow-
derived malignancy was based on the predominantly termi-
nal B-cell phenotype with a small proportion of clonogenic
tumor cells capable of self-renewal.42 With the addition of
TBI, virtually all patients responded (Table 9), and although
the patients were selected more carefully, the median remis-
sion and survival times were longer than with the melphalan
alone (Table 10).
The previous adverse influence of a long duration of
primary drug resistance (> 12 months) and of certain DNA/
RNA features was no longer observed when high melphalan
doses (ie, >90 mg/m2) were employed, indicating both the
lack of cross-resistance
to VAD and, more importantly,
entirely different mechanisms
ofdrug action (Table 9). With
better patient performance (Zubrod <2) and normal renal
function, early mortality was virtually eliminated.
The long-
est remission
and survival times were observed among
patients whose LDH levels were less than 300 U/L both
prior to and during the first 2 weeks after therapy (Table 10
and Fig 3)l7 The short survival times in patients with higher
LDH levels were due to rapid recurrence of a high-grade
myeloma with lymphomalike features.
Among patients receiving bone marrow autografts, neither
the extent of plasmacytosis
nor the tumor-mass
kinetics at
the time of marrow harvest influenced remission and survival
durations.
Since complete remissions with current marrow-ablative
regimens occurred rarely and since the phenotype of the
myeloma stem cell was unknown, autologous bone marrow
purging by immunologic
means appears
unwarranted.
Instead, therapeutic
research should focus on the develop-
ment of regimens that provide even greater cytoreduction.
Potential alternatives
to marrow autografts
include hemato-
poietic growth factors'55 and/or autologous
blood stem
cells,'56"57 particularly
in patients with extensive marrow
plasmacytosis.
The combined use of hematopoietic
growth
factors and autologous stem cells may reduce the duration of
severe neutropenia
and hence the risk of sepsis with ablative
treatments.
Allogeneic bone marrow transplanation.
Because of the
higher mortality from graft-v-host
disease (GVHD) among
older patients, the use of allogeneic bone marrow transplan-
tation (BMT) has not been explored systematically.
Cyclo-
No TBI
+ TBI
N Ded 6 2 C LOH. Low-Low , `.5 5*#{216}4,1j
C 0
0 0. 0
0.
0 8 16 24 32 40
0 8 16 24 32 40
Months Alter Treatment
Fig 3. Survival of VAD-refractory
myeloma after treatment
with HDM with or without TBI (for details, see text). Longest
disease control and survival were achieved in patients whose
serum LDH levels did not exceed 300 U/L within 2 weeks of
therapy. whereas patients with higher levels rarely derived clinical
benefit. The prognostic Importance of LDH applied whether or not
TBI was added.
Table 1 0. Prognostic Factors with HDM fo r VAD-Refr
% TBI N Response
No 36 Yes 16
46 80
Median RelapseFree Survival (months)
LDH, Low-Low
7 18
Othert
3 6
P
.04 .03
P .04 .06 .006
LDH. Low-Low: LDH <300 U/L for at least 14 days after treatment. tOe: LDH 300 U/L before or within 14 days after treatment.
actory Myeloma
Mec8an Survival (months)
LDH, Low-Low 10 35+
.18
Other 4 8
.19
P
.009 .07
874 BARLOGIE ET AL
phosphamide
plus TBI and modifications,
with syngeneic or
allogeneic BMT, has reduced tumor mass markedly in about
one dozen patients, many being treated during a partial
remission.'58"6'
Monoclonal
protein persisted
in many
patients with progressive
or unresponsive
myeloma. In a
recent European trial, about one half of the patients achieved
complete
remission,
and few patients developed
severe
GVHD.'62 With the efficacy ofanti-CD5 MoAb in glucocor-
ticoid-resistant
GVH D, allogeneic marrow transplantation
may be better tolerated by older patients.'63 A comparison of
autologous with allogeneic BMT (in patients with compara-
ble disease features who received identical cytoreductive
therapy) may clarify the possibly adverse effect of autolo-
gous tumor-cell
reinfusion
and the potential gain from a
graft-v-myeloma
effect.
Primary Therapy
VCAD-VAD.
Because of its superior activity in melpha-
lan-refractory
disease, the VAD regimen has been assessed
in previously untreated patients. We have not seen any major
gain in survival with VAD or VCAD-VAD
that includes oral
cyclophosphamide
(VCAD) in comparison
with preceding
regimens,
so that no improvement
in the frequency
of
complete remission on survival time has resulted after a
I 5-year experience
with many drug combinations.'42
The
lack of survival prolongation
with a regimen that was
superior for resistant disease is puzzling, particularly
since
tumor halving times have shontened progressively
from a
median of 2.2 months with MP to I .2 months with VCAP
and to 0.4 months with VAD. The authors reason that
different tumor cells may be affected by the different treat-
ments. VAD with high-dose glucocorticoid
may reduce pre-
ferentially
more differentiated
tumor cells so that such
manifestations
as myeloma protein production,
anemia, and
hypercalcemia
are controlled rapidly. This effect contrasts
with standard
MP, which may be more effective against
myeloma precursors,
so that slower but equally sustained
tumor control is achieved (Fig 2).
Interferon.
Interferon-alpha
is an active cytoreductive
agent for many patients with low tumor load both at
diagnosis and during first remission.S6M6S
The combination
of interferon
with VBMCP
as initial therapy achieved a
higher frequency of complete remission than seen previous-
ly.' However, interferon rarely benefits patients with resis-
tant or relapsing disease several years after diagnosis. An
attractive biological feature of interferon concerns the fre-
quent recovery of normal immunoglobulins
in many
responding
patients, an uncommon
event with standard
chemotherapy.
`
HDM TB!. The Medical Research Council reported
that high-dose intravenous
(IV) melphalan produced a 78%
response rate (with 27% complete remissions) in 4 1 newly
diagnosed patients with advanced disse.'67'68
A subsequent
regimen included initial VAMP (vincnistine-adriamycin
by
continuous
infusion plus methylprednisone
instead of dexa-
methasone
in VAD) followed, at maximum
cytoreduction,
by HDM (200 mg/m2) with autologous
remission marrow.
Preliminary
data indicated a complete remission rate of 30%,
with an additional
50% of patients who achieved partial
responses; 10% suffered early mortality.'69
The authors are conducting similar studies in newly diag-
nosed patients, in which VAD is prescribed
for those with
intermediate
or high tumor mass; responding
patients then
receive HDM (140 mg/m2) and TB! (total dose of 850 cGy
in five fractions) supported by autologous remission marrow.
Only one of five patients treated to date has achieved a
complete remission.
Problems and Promises of Therapy
Combinations
of alkylating agents with or without adnia-
mycin have not proven superior to standard MP introduced
about 25 years ago. During the past 5 years three effective
treatments
have been discovered:
(1 ) alpha-interferon
for
low tumor-mass
disease; (2) high-dose glucocorticoid
thera-
py85 with further benefit from continuous-infusion
vincnis-
tine-adriamycin
in proliferating
myeloma'52; (3) HDM with
superior antitumor effect from added TBI.8"29
The infrequency of complete remissions after marrow-
ablative therapies with autologous BMT seems unlikely to be
due to tumor-cell reinfusion. This reasoning is based on the
slight further reduction
of residual myeloma
protein in
responding
patients consolidated
during remission and the
low number of reinfused plasma cells in proportion to the
number persisting in vivo. Furthermore,
the infusion of
autologous marrow with obvious plasmacytosis
has not short-
ened the duration of remission in patients with refractory
myeloma. The "plateau phase" of myeloma during remission
may represent a cytokinetic
sanctuary
this is resistant to
high-dose therapy.'7#{176} Alternatively,
a BMG-like condition
with resistant and long-lived plasma cells may be a common
precursor phase of myeloma remaining after successful enadication ofthe neoplastic tumor-cell population.'29 In addition,
one must consider the persistence
of causal agents and
mechanisms
sustaining
the monoclonal
gammopathy.
Thus
the continued
production
of a monoclonal
protein after
marrow-ablative
therapy is not incompatible
with durable
disease control.
SUMMARY
AND CONCLUSIONS
Plasma cell myeloma is a more complex neoplasm than
suggested by the relative uniformity of its dominant plasma
cells, which represent the terminal stage of normal B-cell
differentiation.
Phenotypic,
molecular, and cellular genetic
data favor the presence of a myeloma stem cell early in
hematopoietic
development
so that, as in chronic
myelogenous leukemia (CML), a far distance exists between
the primordial malignant cell that was the target of malig-
nant transformation
and the dominant clinical phenotype.
Traces of pre-B, myeloid, and I cells are coexpressed with
the mature B-cell phenotype,
an occurrence
unknown in
normal B-cell differentiation.
Analogous to CML, disease progression is marked by
disease dedifferentiation,
occasionally
with cessation
of
myeloma protein production and development instead of
extnamedullary
lymphomalike
features with high LDH or
PLASMA CELL MYELOMA-INSIGHTS
AND ADVANCES
875
myelodysplasia/acute
myelogenous
leukemia (AML) syn-
dnomes. The prognostic
importance
of serum LDH levels
even in newly diagnosed myeloma suggests the early pres-
ence of tumor cells with "LDH phenotype,"
which, as a
result of drug resistance and proliferative
advantage,
expand
preferentially
during disease progression.
Further character-
ization of these cells may provide important clues about the
ontogeny of multiple myeloma.
Myeloma cells express many receptors logical signals that might be exploitable
for different for therapy
biowith
immunotoxins
or radioisotopes.
Plasma cells and their pne-
cursors also produce a variety of cytokines, some of which
have putatively
autostimulatory
functions (eg, IL-l, IL-5,
IL-6) and/on are related to disease manifestations
(eg, IL-i
and TNF-beta as OAF). The wealth ofcellular expression by
plasma cells provides clues for understanding
the mecha-
nisms of gene activation and the nature of abnormal gnowth
and differentiation. The accuracy
of prognostically
relevant staging systems
has been refined with the use of new quantitative
parameters
that reflect tumor mass (ie, serum B2M levels) and biology.
Further studies of cellular and molecular biology (ie, CAL-
LA, H-ras) may reveal those tumor cell features that define
clinical entities, response to therapy, and long-term pnogno-
sis.
The lack of a major advance in prognosis despite the use of
more drugs and more intensive regimens justifies the con-
tinued use of standard melphalan-prednisone
for patients
with a highly favorable prognosis, for the very aged, and for
those with a short life expectancy due to other major medical
problems.'7'
However, a radical departure
from standard
practice is required to improve the prognosis for younger
patients with poor risk features. Especially rational is the
application,
soon after diagnosis, of three active treatments
that lack cross-resistance,
namely, alpha-interferon,
VAD,
and HDM. Exploiting supportive care measures with mar-
row or blood stem-cell support and/or with hematopoietic
growth factors, one should seek a marked tumor reduction
with ablative treatments
to achieve durable remissions in
most patients. As GVHD becomes more preventable
and
manageable,
allogeneic BMT will become more feasible, and
with comparative
trials, the risk of autologous
tumor-cell
reinfusion can be assessed. The recent notion of an autocnine
growth mechanism,
as in acute myeloid leukemia,'72 suggests
that future therapy can be designed to interfere more specifi-
cally with the abnonmal expression of cellular genes, such as
H-ras and c-myc.
ACKNOWLEDGMENT
The authors wish to express their appreciation to Mattie Thomas and Eva Menefee for their secretarial assistance.
Scott-
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