Document 08JpJDNpZJe6vK3LEwQ1rO7x
Alteration
and Abnormal in Human
Expression Multiple
of the c-myc
Myeloma
Oncogene
By Peter Selvanayagam. Raymond
Mark Blick, Franca Narni, Peter van Tuinen, David
Alexanian.
Grady F. Saunders,
and Bart Barlogie
H. Ledbetter,
Structural
alterations
of the c-myc oncogene
in human
Burkitt's lymphoma
and mouse plasmacytoma
suggest that
this oncogene
is involved in several B cell neoplasms.
The
possibility
of c-myc alterations
in human myeloma has not
been explored,
probably
because
the low proliferative
activity characteristic
of this tumor impairs the propaga-
tion of representative
cell lines for the performance
of
adequate
cytogenetic
studies. This report
tions in the c-myc locus with concomitant
describes elevated
alteraexpres-
sion of mRNA in the tumor cells of two of 37 patients with
multiple myeloma.
In one case. somatic cell hybrid studies
M ULTIPLE
MYELOMA
is a neoplasm of differen-
tiated B (plasma) cells that is characterized
by
monoclonal immunogbobulin
(Ig) production.'
There is grow-
ing evidence that cellular oncogenes are altered or overex-
pressed in several human malignancies,
although their role in
neoplastic transformation
remains to be determined.2 Onco-
genes are activated by several mechanisms,
most notably by
chromosomal
translocation,
as has been observed frequently
in human lymphoma and leukemia.3'5 Similar data are not
available for myeloma, probably because no consistent chro-
mosomal anomalies
have been found.'
Myeboma plasma
cells typically have a low proliferative
activity that renders
karyotypic studies difficult, and only a few representative
cell lines have been established?9
Yet, an unequivocal
increase in the nuclear DNA content ofplasma cells has been
observed in 80% of patients.'#{176}We analyzed the structure and
expression of the c-myc oncogene in myeboma plasma cells
because c-myc is involved frequently
in other human and
animal B cell neoplasms."2
We report here alterations in
the c-myc gene locus with a concomitant
elevated expression
of mRNA in the tumor cells of two of 37 patients. Seven
other myeloma samples also showed an abnormally high
expression
of c-myc mRNA without alteration
in gene
structure. These data indicate that the c-myc oncogene is
involved in human myeloma.
From the Departments
ofHematology,
Biochemistry
and Molec-
u/ar Biology. and Clinical Immunology and Biological Therapy. The University of Texas System Cancer Center, M.D. Anderson
Hospital
and Tumor Institute;
and the Institute for Molecular
Genetics, Baylor College ofMedicine. Houston.
Submitted December 1. /986; accepted August 15, 1987.
Supported in part by Grants No. CA37161. CA28771, CA16672
from the National
Institute
of Health and the Cullen Trust
Foundationfor Health Care. Address reprint requests to Bart Barlogie. MD. Department of
Hematology, University of Texas System Cancer Center. M.D.
Anderson Hospital and Tumor Institute, /515 Holcombe Blvd.
Houston, TX 77030. The publication costs ofthis article were defrayed in part by page
charge payment. This article must therefore be hereby marked
"advertisement"
in accordance
indicate this fact.
with 18 U.S.C. 1 734 solely to
1 988 by Grune & Stratton, Inc.
0006-4971/88/7101-0002$3.00/0
revealed
that the cloned rearranged
DNA was entirely
derived from chromosome
8. thus indicating
a novel mech-
anism of c-myc activation
different
from that in Burkitt's
lymphoma.
Seven other patients exhibited
five- to 12-fold
overexpression
of c-myc RNA when compared
with normal
marrow
cells. Elevated
mRNA expression
in about one
fourth
of our patients
suggests
that the c-myc oncogene
has a pathogenetic
role in the evolution
of multiple myelo-
ma.
e 1988 by Grune & Stratton. Inc.
MATERIALS
AND METHODS
Bone marrow aspirates were studied in 37 patients, in eight at the time of diagnosis and in 29 during later advanced stages of disease. Informed consent was obtained before the bone marrow aspiration
procedures. The degree of marrow plasmacytosis
was usually
marked (median, 55%). Myeloma protein was phenotyped by immu-
noelectrophoresis,
and cytogenetic studies were conducted on several
samples (Table I ). Bone marrow cells and placental tissue from
normal healthy individuals served as controls. HL-60 cells with
abundant c-myc mRNA were used as a positive control for RNA
expression studies. Informed consent was obtained before bone
marrow aspiration procedures.
Nucleic acid analysis.
High-molecular
weight DNA and total
RNA were coextracted from bone marrow cells by the method of
Erisman et al.'3 DNA was digested with restriction enzymes as
recommended
by the manufacturer. Size fractionation in agarose gel
and transfer to nitrocellubose filter were carried out by the method of
Southern.'4 For Northern blot analysis, 20 zg of total RNA was
denatured in 1 mob/L glyoxal, 50% dimethylsulfoxide,
and 10
mmol/L phosphate buffer, pH 7.0, at 50#{176}fCor one hour; size-
fractionated in I .2% agarose gel; and transferred to nitrocellulose
filter by the method of Thomas." Hybridization of the DNA and
RNA filters with 32P-labeled gene probes and subsequent washing
were carried out according to the method of Maniatis et al."
Autoradiography
on x-ray films was performed at - 70#{176}fCor
various durations. Gene expression was quantitated by densitometric
scanning of autoradiograms.
Isolation
of the rearranged
gene. Tumor DNA digested with
Hind III enzyme was fractionated in a sucrose density gradient, and
the fraction enriched for the rearranged myc fragment was cloned
into X2001 phage vector.'7 Screening of the library and purification
of the recombinant phage were performed by published protocols.'8
Somatic cell hybrid analysis.
Construction
and analysis of
Chinese hamster-human
and mouse-human
somatic cell hybrids
have been reported previously.'9'#{176} G-banding analysis was per-
formed on at least 20 cells in each hybrid and was followed by
sequential G- I 1 staining of selected G-banded cells. Chromosomes
were scored as absent if they were found in less than 20% of the cells
scored.
Gene probes. The c-myc probe used in our experiments is a I .6
kibobase (kb) CIa I-Eco RI fragment (MC 41'3rC) consisting of the
third exon and the 3' flanking sequences of the human c-myc gene.2'
To detect structural abnormalities at the 5' portion of myc, we used a
0.8-kb Pvu II fragment consisting of the first exon and the 5' flank of
the c-myc gene.22 Immunogbobulin gene rearrangements
were exam-
med with human JH,2' 24 C5,24 C,,,,2' C,,,2' Ck,27 and Ch28 probes.
For determining the proliferative activity, an S-phase-specific
gene
encoding histone H3 was used.29
30 Blood. Vol 7 1 . No 1 (January), 1 988: pp 30-35
C-MYC ALTERATION
IN MULTIPLE
MVELOMA
31
Table 1 . Clinical. Cytogenetic. and Molecular Features in 37 Patients With Multiple Myeloma
c-myc
RNA DNA
No. % PC Expression ( 1 5%I Rearrangement
1 76
2 10 3 65 4 90 5 21 6 26 7 21 8 86 9 43 10 48 11 73 12 48 13 80 14 77
10
10 12 10
8 8 8 6 5 1 1 1 1 1
+
-
15 16-25
26-37
44 >10
>10
1 1
1
-
.1,, Rearrangement
+ + + + + + + + + + + +
-
+
+ +. 8;-,
+
2
Ig L
Rearrangement
ic K
x
K
A
K K K K K K
nd
K
X k.6; Xl; nd, 3 k.8; nd, 2; ND, 2
M Protein
A, G, Ak A, A, A, A, G, G, A, G, A,
4A
A,
A A,,1;A,2;G,5;BJP,2
A,,4; G,.4; G5.4
Chromosome8 Anomalies
+8 ND t(8;14)(q24;q32) -8 Normal Normal Normal ND Normal t(8;14)(q24;q32) +8;+8 der(8);t(8;?)(q24;?) der(8);(8;?)(q22;?l der(8); -8;
t(1;8)(pl 1;p23) -8 Normal ND
Abbre viations : X. -fold increase over normal marrow; nd, not detected; ND, not done; BJP. Bence Jones protein; % PC, plas ma cells.
RESULTS
Analysis of Ig (and more recently of T cell receptor) gene
rearrangement
has helped determine the clonality and differ-
entiation stage in lymphoproliferative
disorders.23'#{176} When
applied to bone marrow samples from 37 myeboma patients,
discrete rearrangements
of Ig heavy- and light-chain
genes
were observed in most cases and corresponded
to immuno-
electrophoretic
results (Table I and Fig 1). The autoradio-
graphic signal intensity of rearranged
Ig gene bands corre-
sponded with the degree of bone marrow plasmacytosis.
For c-myc gene analysis, DNA was digested with Barn HI,
Eco RI and Hind III restriction enzymes and hybridized to
the probe MC 4l'3rC. One of the 37 samples (myeboma I),
digested with Hind III, showed a rearranged
14-kb c-rnyc
fragment as well as the germline 1 1 .6-kb band. This finding
was corroborated
by additional analysis with Kpn I and Bgl
II, which revealed rearranged
myc fragments of I 5 and 9 kb
in size, respectively
(Fig 2A). Further analysis of the gene
locus by using additional
restriction
enzymes localized the
aberration
to a site between the Xba I and BgI II at the 3'
flanking region of the gene (Fig 2B). In comparison
with
their germline counterparts,
the rearranged
myc fragments
always exhibited a reduced signal intensity (Fig 2A). The
germline bands had the same size as those from normal
human placental
DNA analyzed
in parallel (data not
shown).
To examine
whether
the rearranged
myc DNA in
myeboma was associated with Ig genes frequently observed in
other B cell malignancies,"
filters were rehybridized
to
several Ig heavy- and light-chain gene probes. As seen in Fig
3, the rearranged
myc fragment did not react with C5 and JH
as well as S, Cai, C.y4, Ck, and C probes (data not shown),
thereby
implying
a novel rearrangement
of c-rnyc in
myeboma I . To confirm this, the novel DNA situated at the 3'
flank ofthe altered rnyc was isolated by means ofcboning into
a phage vector and probed with a panel of hamster-human
Normal Marrow
L.
I
Myeloma
1
p\J\
Myeloma
1
C')
Normal Marrow
Fig 1 . Detection
marrow
of a patient
of monoclonal plasma cells in the bone with IgAx meyloma. BgI II- and Barn HI-
digested DNA from myeloma 1 was hybridized to P-labeled
H and
C, probes which detected 5.5-kb and 1 0.5-kb rearranged Ig heavy-
and K light-chain gene bands. respectively
(arrows). The probes
also revealed 4.2-kb heavy-chain and 1 2-kb light-chain germline
gene bands. probably from the unrearranged
alleles of the 75%
plasma cells and normal hemopoietic cells. Hybridization to the C5
probe revealed a germline configuration
(not shown). DNA from
bone marrow cells of a healthy donor was used as control.
32
SELVANAVAGAM
ET AL
I
E0
CD 0 Lu
=-
-
:,::C CD > a) .Q_ I
C
I +
0
w
I.," Is.')
- 23.7
- 9.5
- 67
`
- 4.,;
2.25
e
LLjx
A --t
=-
:e
.S Ix
-`it -f
-
:,-,
_Q
OOwl
E
0!
.. .
_a e )coII
`1' .. .
_
ea E X
1---- If
ca
i
BI
ii -I
- I ai
` `lii
XSHR PROBES
B
-
.-i
Pv-Pv
`-4 MC4 l3Rc
I `-4 humm 1
Fig 2. (Top) Southern blot analysis of myeloma 1 DNA with
c-myc probe MC 41 `3rC. Kpn I. BgI II, and Hind Ill restriction
enzyme digestions revealed a rearranged c-myc fragment (arrows)
with reduced signal intensity when compared with germline
bands. No rearranged c-myc band was detectable after Barn HI
digestion. probably reflecting a similar or large DNA fragment size.
The germline fragments resulting from digestion with different
enzymes matched the sizes of control human placental DNA
analyzed in parallel (not shown). (Bottom) Partial restriction
map
of the human germline c-myc gene (A) and the rearranged myc
DNA from myeloma 1 showing the alteration in the 3' flanking
region of the gene (B; open bar). The location of the probes used is
indicated.
XSHR is the cloned Hind Ill fragment.
and mouse-human
somatic hybrid cell DNA. As seen in
Table 2, the probe hurnrn I isolated from the novel sequences
in myeloma I (Fig 2B) was localized to chromosome
8 with
100% concordance. The probe hybridized to an 18-kb human
DNA fragment
generated
by Barn HI. The probe also
hybridized
to a 23-kb mouse band, whereas hamster DNA
failed to react with this probe (Fig 4).
In a second more recently studied case (myeloma 2), the
tumor DNA revealed additional myc fragments 21, 5, and 10
kb in size after digestion with Barn HI, Eco RI and Kpn I,
respectively (Fig 5). Due to a shortage of material, detailed
characterization
of this rearrangement
by using primary
tumor DNA was not possible.
When DNA was digested with Pvu II enzyme and hybrid-
ized to the first exon-specific rnyc probe,22 all 37 samples
exhibited a germline configuration
indicating the absence of
structural changes characteristic
of endemic Burkitt's lym-
phoma. There was no gene amplification evident in any of
these other samples investigated.
The two cases with rnyc DNA rearrangement
showed
increased transcriptional
activity on Northern analysis (Fig
6A). Seven other patients, or a total of 24%, also exhibited
higher myc RNA expression in comparison with that of
normal bone marrow (Fig 6B). RNA overexpression
ranged
from five- to I 2-fold using slot blot analysis (Table 1). Bone
marrow cells from a healthy individual
were chosen as
reference tissue in the absence of significant
quantities
of
normal plasma cells. Elevated c-rnyc expression
in our
myeloma samples was not proliferation
related because the
expression
of the S-phase-specific
histone H3 gene was
consistently
lower in myeloma samples compared with nor-
mal bone marrow (Fig 6C). Although (8;14) translocations
have recently been observed in human myeloma,3'
our two cases (see Table 1 ), high myc expression
including was also
noted with other chromosome 8 abnormalities;
conversely,
only one of the two cases with t(8;14) translocations
was
associated
with elevated
myc transcriptional
activity.
Although there was no apparent clinical association with
increased c-rnyc expression, the IgA myeboma protein type
was more frequent among such patients in comparison with
the remaining 28 individuals with low myc gene activity
(67% V 39%, P = .29).
DISCUSSION
There is growing evidence that cellular oncogenes
are
altered or amplified in several human malignancies.
The
c-myc oncogene, which is closely associated with Burkitt's
lymphoma,3 is also altered in other human B cell tumors.32 In
human plasma cell myeboma, however, gross alterations
of
the myc gene were infrequent, with only two of 37 patients
showing rearrangement
within the 30-kb region analyzed.
Sumegi et al33 found no alteration of the c-rnyc locus among
21 patients with myeloma.33 Recently, Gazdar et al observed
c-rnyc gene rearrangement
in a myeloma cell line that they
considered responsible for maintaining
continuous growth in
culture.9 Interestingly,
this cell line as well as six of our nine
patients with elevated rnyc expression
secreted IgA myeloma
protein (Table 1). Similarly, recent cytogenetic
studies from
this laboratory
revealed that all of four t(8;14) anomalies
were associated with an IgA phenotype.3'
The c-myc gene alteration in myeloma 1 with 75% marrow
plasmacytosis
appeared to be tumor specific because the
hybridization
signal intensities of the rearranged
rnyc frag-
ments (and of the rearranged
Ig gene bands) were consis-
tently less than those of their germline counterparts
(Figs I
and 2). This observation
ruled out the possibility
of a
constitutive
c-rnyc aberration
and indicated involvement
of
only one allele. The 5' portion of the rnyc gene, which is
frequently
altered in endemic
Burkitt's
lymphoma,
was
intact in myeloma. In contrast to similar alterations
in a few
variant Burkitt's lymphomas"
and mouse plasmacytomas34
with chromosomal
translocations
involving Ig light-chain
genes, alteration
at the 3' flank of the rnyc gene from
C-MYC ALTERATION IN MULTIPLE MYELOMA
33
kb .
#{216}i: ---- -
11
.. , -
1!
:::=
Cp
I
c-myc
.1
Fig 3. Cohybridization
analysis demonstrating
the lack of Ig gene elements within the rearranged c-myc fragment in myeloma 1 . The
filter containing BgI Il-digested DNA was hybridized to the c-myc probe MC41 `3rC and revealed a 9-kb altered myc fragment (center).
After the c-myc probe was stripped from the filter. the filter was rehybridized to C8 (left) and J, (right) probes. Similar negative results
were obtained after hybridization to the 5,,. C,.1. and C. subunits of the Ig heavy-chain gene as well as the Cic and CX light-chain gene
probes (not shown). The less intense germline C,, signal is probably due to deletion of the C,, region during B cell maturation of myeloma
plasma cells. Equal amounts of placental DNA from a normal individual were used as control.
Ta ble 2. Som atic Cell H ybrid Map ping of the hum m 1 Probe
Hybrid Probe 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 X V
C,1A 1.4 8.2
16.1 MR2.2 MR7.11 MR1.21 SA-5 MH-18
- - - + + + + - - - - + + - ++ ++ + - - + + + -
- - - ++
+-
- +- +- +-
+ - + + + - - + +-
++
+-
++
+-
- - +- - +-
-
- + + + + + - --
- + - - --
+-
++-
+-
++
- - - + - - - + --
++ - +
+-
+ +-
++--
+ - + --
-
-
+-
+
--
+- - - +++-
+ --
- - + - - + -+ - - + - - - -
+ - - + - + + + + + - + + + ++ - + - - + + - - -
This hybrid contains tmis hybrid contains
the translocation the translocation
chromosome chromosome
1 Sqter - 1 Sql 5: : 1 7p13 -` 1 7qter. 9qter -` 9q 1 2: : 1 7p 1 1 -` 1 7qter.
C
CD Cl)
EE
CD
Ill
234
5 678
CD
Cl)
0
9
kb
23
- 18
Fig 4. High-molecular
weight DNA from hamster-human
and mouse-human
somatic cell hybrids was digested with Barn HI and
transferred to nitrocellulose filter. Hybridization conditions with the humm 1 probe was as described in Materials and Methods. The size of
the human and mouse fragments hybridizing to the probe was determined by comparison with standard size markers resolved in parallel.
Lanes 1 to 9 contain DNA from somatic cell hybrids described in Table 2. Discrete bands reacting with the humm 1 probe can be detected in
lanes 3 and 9.
34
SELVANAYAGAM
ET AL
TN
i,
TN
TN kb
- 23.1
9.4
,.`. .t.11Q_,
`p-, riM
6.6 4.3
__a_!p HI
#{231}#R{2I 31}p cP!i I
Fig 5. Detection of c-myc gene alteration in myeloma 2. DNA from the bone marrow cells of the patient (T) and of a healthy donor (N) was analyzed with the probe MC41'3rC by methods described earlier. Rearranged myc fragments in the patient's DNA are indicated by arrows.
myeboma 1 did not show cohybridization
with either light- or
heavy-chain
gene probes. Instead, somatic cell hybridization
experiments
revealed that the cloned rearranged
DNA origi-
nated entirely from chromosome
8, thus suggesting inversion
or deletion as a possible novel mechanism
of rnyc gene
deregulation.
Similar alterations
at the 3' portion of the myc
gene, associated with enhanced transcriptional
activity, have
been reported in T cell leukemia lines.35'3' Enhancer elements
are capable of controlling
gene transcription
in an orienta-
lion-independent
manner over long distances,37 and the possi-
bility that the novel DNA isolated from the 3' part of the
rearranged
myc gene in myeboma 1 has enhancer properties
is being investigated.
A second case of rnyc gene alteration
with associated RNA overexpression
likewise revealed a lack
of Ig gene involvement. The high myc RNA expression in the
absence of DNA rearrangement
could be due to alterations
at large distances from the analyzed area.36 The occurrence
of elevated c-myc expression
in about one fourth of our
patients with or without demonstrable
gene alterations
mdi-
cates a possible pathogenetic role of the c-rnyc oncogene in
multiple myeloma.
ACKNOWLEDGMENT
We thank Trenton Lewin for his technical Thomas for her secretarial assistance.
assistance
and Mattie
-. c'J
CD CD
EE .2 co .2
CD I CD
>, __l >
A
EI
E
kb
- 2.3 - 1.1
0
CD
B-
E
L-
34
0-
Cl) C
0 2----
0
:tz<8-
16-
myeloma
56
78
9
0 (0
I
I
PC% 76 0
C
Cl)
2. -
2A 0` <0 z
I `J
E
0
z
10
CD
E
0 CD
;. a \. .,c...;
0
(0
I #{149}
., .
-.
,.
;
#{182}.-...
Fig 6. (A) Abnormal expression of the c-myc gene in bone marrow cells of
myeloma 1 and 2. Equal amounts of total RNA (20 i.tg) were size-fractionated.
transferred to nitrocellulose filter. and hybridized to the probes MC41 `3rC and C,. The
myc probe revealed 2.3-kb transcripts.
and the C, gene probe detected 1 .1 -kb
transcripts
in myeloma samples. The human promyelocytic
cell line H160 showed
abundant myc expression but lacked the C, gene expression.
PC%. percentage
of
myeloma
plasma cells. (B) RNA overexpression
in myeloma
cases was determined
by
slot blot analysis in comparison with normal marrow control. (C) Slot blot analysis of
histone H3 gene expression in myeloma 1 . Normal marrow and H160 cells revealed
higher proliferative activity than myeloma 1.
C-MVC ALTERATION
IN MULTIPLE
MYELOMA
35
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