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,232
Journal of Food Protection, Vol. 47, No. 3, Pages 232-236 (March 1984) Copyright5, International Association ol Milk. Food and Environmental Sanitarians
HOTICS: This material may
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by copyright.
Plant Contamination by PCBs from Amended Soils
BRIJ L. SAWHNEY and LESTER HANKIN'*
'
Departments ofSoil and Water andBiochemistry and Genetics, The ConnecticutAgricultural Experiment Station, Box 1106, New Haven. Connecticut06504
(Received for publication September 6.19S3)
ABSTRACT
Plants accumulated PCBs (Aroclors) from soil amended with lake sediment contaminated with Aroclors 1248, 12S4, and 1260. Uptake into different parts of vegetable plants was investigated in the field by growing beets (Beta vulgaris L.), turnips (Brassica rapa L.) and beans (Phaseolus vulgaris L.). In beets and turnips, leaves accumulated larger concentrations of PCBs than the roots. In beans, leaves and pods contained higher concentrations than the stems, while only low concentrations were detected in the seeds. Bioac cumulation of Aroclors by plants was in the following order: Aroclor 1248 > 1254 > 1260. Relative to their concentration in the soil, the lower chlorinated PCB isomers which are more soluble in water and more volatile were more abundant in plants then the higher chlorinated isomers.
PCBs (polychlorinated biphenyls), a group of toxic and persistent organic compounds, have been extensively used in a number of industrial products. Although no longer man ufactured in this country, their prior manufacture, use and disposal have resulted in their entry into the environment, particularly in sediments of streams and rivers. Fish caught from contaminated water contain PCBs in excess of the 5 mg/ kg tolerance limit established by the U.S. Federal Food and Drug Administration (4). Tolerances for other food products vary from 0.3 mg/kg in eggs to 1.5 mg/kg (on a fat basis) in milk and manufactured dairy products [4). Presence of PCBs in river sediments continues to be a source for their entry into the food chain. A possible method to decontami nate rivers is to dredge and dispose the sediments on land.. However, it is essential to know whether plants growing on contaminated land would take up the PCBs, and thus become another pathway for their entry into the food chain.
PCBs manufactured in the U.S. have been marketed under. the trade name Aroclors (Monsanto Chemical Co.). Most common preparations of Aroclors are 1242, 1248, 1254, and 1260; the last two digits indicate the average percentage of chlorine in the PCB molecule. Each Aroclor preparation con tains a number of chlorobiphenyl isomers.
Investigations of PCB uptake by plants are sparse and mostly limited to either one or more individual chlori nated biphenyl isomers or a single PCB preparation added to the growth medium. Iwata et al. (9), in studies of up take of Aroclor 1254 by carrots, found that 97% of the
Aroclor taken up from the soil was retained by the carrot
peels. These researchers also detected the Aroclor in the
foliage and attributed its presence primarily to absorption
of contaminated soil dust. Fries and Marrow (5) used in-,
dividual isomers in their study and attributed their pres
ence in the foliage of soybean plants to contamination
from vapor sorption. Accumulation of air-bome PCBs by
plant foliage has recently been demonstrated by Buckley
(2). Experiments with y4C-labelled Aroclor 1254 showed
only small concentrations in soybean and fescue (20). Or
chard grass and carrots grown in a soil contaminated with
PBBs (polybrominated biphenyls) showed no or very
minor uptake {11). Similarly, Chou et al. /J) found that
when soybean and com seedlings were grown in a nutri
ent medium containing ,4C-labelled PBB isomers for
about a 1-week period, plant roots contained radioactive
residues but no radioactivity was detected in the leaves.
These authors also found PBB in concentrations ranging
from about 38 to 535 pg/kg in radish, carrot, and onion
roots grown in two soils contaminated with 100 mg of
PBB/kg. Above ground portions of the crops, however,
were not analyzed in these experiments.
'
In contrast to these investigations, Babish et al. (/) found
that cabbage grown on a 120-cm deep deposit of anaerobi
cally digested sewage sludge contaminated with PCBs con
tained about 400 pg of PCBs/kg and the liver from guinea
pigs fed on this cabbage showed higher PCB concentrations.
than the liver from guinea pigs fed on cabbage from the con
trol plots. In a study by Strek etal. (16), beet and peanut tops
accumulated as much as 815 and 473 pg of ;,,C-labelIed
Aroclor 1254/kg, respectively, from a sandy soil to which 20
mg of Aroclor/kg was added. Uptake of ;4C-labelled di- and
tri -chlorobiphenyl isomers by spruce seedlings over a 4-year
growth period, as determined from total raioactive residue,
was 401 pg/kg and 231 pg/kg in needles and stems, respec
tively (13). In a sand culture experiment, Suzuki et al. (17)
detected 150 pg/kg in soybean sprouts grown in sand treated
with 100 mg of Aroclor 1242/kg. These authors inserted a
7-cm thick layer of uncontaminated sand through which the
soybeans grew into the contaminated sand. As the analysis
of the "barrier'' sand showed no PCBs, the uptake by the
bean sprouts was considered to have occurred by PCB trans
location through the plant roots.
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PLANTS CONTAMINATED WITH PCBs
233
Thus PCB uptake by crop plants growing on a contami-
,
nated growth medium have been shown to occur either
through sorption of the volatilized PCBs or through their
translocation via root uptake. Quantitative determination of
the uptake of different Aroclors from contaminated environ
mental sources containing mixtures of Aroclors, however,
has not been attempted. In the present investigation, we de
termined uptake of different Aroclors, as well as individual
chlorobiphenyl isomers present in the Aroclors, by plants
grown in field soil amended with lake sediment containing
.
Aroclors 1248,1254and 1260. .
.; . . . -~ ..
. MATERIALS AND METHODS .
"
.
Source erfPCBs and soil amendment
"
'
'
Bottom sediment from Woods Pond, which is contaminated with PCBs
~
and is obviously a source of PCBs in the Housatonic River system (6), was ' . |-
used as an amendment for so3 on which vegetables were grown. The' sedi-
\
ment contained 4.6 mg ofAroclor 1248,8.0 mg of Aroclor 1254, and 44.5 '' =
mg/ of Aroclor 1260/kg on a dry-weight basis. Seven hundred and fifty-six ' 5, liters of sediment (about 30% solids) were poured on the surface of a ; -
2 mx 2 m soil plot isolated in the field by 2.5 cmx 15 cm wooden boards '
inserted into the ground. WhcB the amended plot appeared air-dried, the sur- . ;
face 15 cm of soil was thorongly mixed. A control plot was similarly con
structed and treated with water instead of sediment. ;
'!,
Sampling andpreparationofplant material ,
. ;
In May 1981, turnips {Srassica rapa L.) and red beets (Bela vulgaris L.) .
were planted in each plot. Both leaves and roots were harvested on October
15, 1981. washed with warm water while scrubbing with a brush to ensure
removal of any adhering soil particles. All plant material was dried in a .
forced-air oven at 1CTC. Tests showed no loss of PCBs by drying plant mate
rial at this temperature. The dried parts were then ground in a stainless steel
Wiley mill to pass through a 20-mesh sieve. In May 1982, turnips and snap
beans (Paaseolus vulgaris L.) were planted in the same plots without any
further addition of sediment. Turnip leaves were harvested three times dur
ing the growing seasion, whereas beans were harvested only once.
.
Extraction and analyses ofPCBs
'.
` ''
Ten-g samples of dried, ground plant material were extracted with 150
ml of petroleum ether and 20 g of the amended soil were extracted with 150
ml 1:1 acetoneihexane mixture. The extracts were purified to remove inter- '
feting chlorinated compounds (18.19) and analyzed with a gas chromatog
raph (GC) equipped with a^Ni electron capture detector. A 180-cm glass
column (2 mm i.d.) filled with 3% OV-1 on Chromosorb W (80/100 mesh)
w as used. Details of the purification of extracts, operating conditions of the
chroma!ograph and the method for determination ofdifferent Aroclors from
the resulting chromatograms are described in an earlier publication (75).
RESULTS AND DISCUSSION
Uptake of PCBs from amended soil
Figure 1 shows gas chromatograms of PCB extracts from soil amended with sediment containing PCBs and from leaves of bean plants grown on the amended soil and on control soil. Leaf extracts were concentrated to 2 ml. whereas the soil extract was diluted to 200 ml to obtain optimum peak heights. Peaks 1 through 20 corres pond to different chlorobiphenyl isomer peaks present in individual preparations of Aroclors 1248, 1254, and 1260 (Table 1). The lower numbered peaks with lower reten tion times (RTs) correspond to the less chlorinated biphenyls and higher numbered peaks to more chlorinated biphenyls. The data in Table 1 also show that the peaks obtained from individual preparations of the three Aroc-
Retention Time, min
Figure 1. Gas chromatograms of extracts from field soil amended with lake sediment contaminated with PCBs and from leaves of bean plants grown on contaminated and control soils.
lors overlap, with peaks of lower chlorinated biphenyls more abundant in Aroclor .1248 and peaks of higher .. chlorinated biphenyls more abundant in Aroclor 1260. The peaks in the gas chromatograms (Fig. 1) clearly show that leaves of the bean plant grown in the amended soil contained PCBs that were present in the amended soil while the bean plants grown on the control soil con tain no detectable PCBs. Heights of the different peaks, however, show that leaves contain relatively larger con centrations of the lower chlorinated biphenyls and smaller concentrations of the higher chlorinated biphenyls than . the amended soil.
Bioaccumulation ofdifferent Aroclorsfrom soil
Uptake of different chlorobiphenyls by plants in relation to their contents in the amended soil is illustrated in Fig. 2 by ratios of peak heights of individual chlorobiphenyls in ex tracts from the plants to those from the soil. The ratios appear to decrease with increasing retention times. Ratios of the low chlorinated biphenyls (the first 7 peaks), in leaves, to corres ponding biphenyls in soil, are greater than 1, while ratios of the remaining biphenyls are less than 1 and decrease with in-
JOURNAL OF FOOD PROTECTION. VOL. 47, MARCH 1984
PCB-ARCH-EXT0378332
234
SAWHNEY and hankin , ;
creasing chlorination. The relationship between the ratio of
the lower chlorinated biphenyls. These results are in agree
the GC peaks in leaves to peaks in soil and retention times
ment with observations of Iwata et al. (9) and Suzuki et al.
of peaks (Fig. 2) show that under experimental conditions
(/ 7) who used individual Aroclors and found that peaks with
used, bioaccumulation by plants of chlorobiphenyls with re
early retention times, corresponding to less chlorinated
tention times less than 12 min increases rapidly with decrease
biphenyls, were higher in carrots and soybeans.
in chlorination. Bioaccumulation of the less chlorinated
Estimates of amounts of different Aroclors, 1248,
biphenyls corresponding to the first seven GC peaks was 20
1254, and 1260, obtained from analyses of peak heights
60 times as high as the most chlorinated biphenyl corres
(15) in extracts from different plant materials harvested .
ponding to the last peak. Other parts of these plants and other
in 1981 are given in Table 2. Comparison of concentra
plant species also showed uptake of larger concentrations of
tions of different Aroclors in roots and leaves of both
TABLE 1. Heights ofgas chromatographicpeaks obtainedfrom in dividual standardpreparations ofAroclors 1248.1254 and 1260...
Heighi, mm
Peak number
1248
1254
.
1260
1
2
3
.
4
5
6
7 :
8
9
. 10
11
12
4
- .
' -
%
18
- *
-
10
-'
42
* . ' .'
16 " ; ; .: '
25
' ' 14
'
- ''A
. A*.
' ,
. .
'
- - '. '
.
v
23
... 7 .v
21
2
'- ' '
41
23.
' ... . 8
16
- .. 2
-
,3
. 9
21
.9
`
6
12
4
beets and turnips suggest that leaves accumulate greater
concentrations of each of the three Aroclors; for example,
beet roots contain 15, 16, and 35 p.g/kg, respectively,
of Aroclors 1248, 1254, and 1260 while beet leaves con
tain 22, 94, and 52 p.g/kg of the three Aroclors. Total
concentrations of the three Aroclors in beet roots and
leaves and in turnips roots and leaves were 66 and 168
and 66 and 99 pg/kg, respectively. These results are in
contrast to those of Iwata and Gunther (JO) who found.
much higher concentrations of Aroclor 1254 in the carrot `
roots than in the foilage of carrots grown on a soil to
which 100 pg/kg Aroclor 1254 was added.
. -'
' Rarios of the concentrations of different Aroclors in the
plants grown in 1981 to their concentrations in the soil,-
the bioaccumulation .factor (BF), show that bioaccumula
tion.by plants was Aroclor 1248 > 1254 > 1260 (Table .
13
8
19
6
2). The relative bioaccumulation factor (RBF), i.e. the
14
6
20
22
BF factor of .Aroclor 1248 or 1254 compared to Aroclor
15
16
'
17
18
19
20
4
15
- .
3 .
-
12
-
3 .
-
2
-
2
29
'
13
20
16
12
19
"2 p.lofO.2 |ig/m! standard solution of each Aroclor were used. .
1260, shows that bioaccumulation of Aroclor 1248 was 94 times more than 1260 by beet roots and 188 times more by turnip roots. Bioaccumulation of Aroclor 1254 was 4 times more than 1260 by the two root systems. The RBF for Aroclor 1248 was 69 for beet leaves and . 200 for turnip leaves and for Aroclor 1254 it was 12 for : beet leaves and 11 for turnip leaves. These trends would
be expected whether PCBs are sorbed by the leaves as
. vapors or translocated through the root system via passive
transport in the water stream because both the vapor pres
sure and the solubility of the Aroclors are in the order
' 1248 > 1254 > 1260 (8).
. .'
Figure 2. Ratios of GC peak heights from extracts of beet leaves
grown on a soil amended with lake sediment contaminated with
PCBs to the corresponding peaksfrom soil extracts. Numbers.with
in the circles indicate peak number (see Table I). Ratios for peaks
2 and 4 are not shown infigure because they lie beyond the selected
graph scale.
Concentrations of PCBs in various parts of the vegetables grown in the amended soil during the second year are given in Table 3. A comparison of the PCB concentrations in tur nips grown in the amended soil in the two years (Table 2 vs. Table 3) shows a decrease in Aroclor 1248 uptake relative to Aroclors 1254 and 1260 in the second year. This decrease is likely due to a large reduction in the amount of Aroclor 1248 in the soil after the first year; indeed, only traces of Aroclor 1248 were detected in soil during the second year of cropping, and hence, no certain measurable concentration of 1248 in the second year is given here. Iwata et al. (9) also noted the lower GC peaks corresponding to less chlorinated biphenyls in the Aroclor 1254 applied to soil disappeared fas ter than higher peaks; a 20% decrease occurred in peak number 1 in 10 months, whereas peak 10 remained essen tially the same during this period. Greater losses of the less chlorinated biphenyls can occur either by volatilization or by degradation. Our experiments (7) on microbial degradation of PCBs in soil cultures show that the less chlorinated
JOURNAL OF FOOD PROTECTION. VOL. 47. MARCH 19S4
PCB-ARCH-EXT0378333
PLANTSCONTAMrNATEDWTTH PCBs
*
'
235
biphenyls degraded more readily in soils. Also, the degree
of degradation was different in different soils and varied with ,
cropping history of the soil. For example, 90% of Aroclor
1248 in sediment added to a fine sandy loam soil in com was
degraded in a 2-week period, while only 20% was degraded
in a similar soil in a pine forest. The losses of PCBs due to
volatilization would be minimal in culture experiments be
cause the reaction was carried out in flasks stoppered with
cotton plugs that prevented direct exposure of the reaction .
mixture to the atmosphere.
.' . '
Although the mechanism of PCB degradation is not clear,
ease of degradation of the less chlorinated Aroclors may be
related to their higher solubility in water.
Data in Table 3 show that turnip leaves harvested on three
different dates contained similar concentrations of the Aroc-
lors, except that Aroclors 1254 and 1260 were somewhat
higher in the last harvest. Greater concentrations in unpeeled '
than peeled turnips are in accord with results with unpeeled
and peeled carrots (9). High concentrations in peels of crop
roots likely result from diffusion and dissolution of PCBs in
organic constituents of peels which are in close proximity to
contaminated soil particles. Presence of PCBs in leaves, .
stems, pods and small amounts in seeds may be attributed,
at least in part, to their uptake and translocation into various
plant parts. These results and uptake of PCBs by soybean
sprouts grown in sand culture (17) and their detection in rice
grains (74), demonstrate that PCBs can be taken up by plant
roots and translocated to above ground parts of plants.The
mechanism by which these non-polar, neutral large organic
molecules are taken up and translocated into the plant is not
clear at present, but must be similar to uptake of organo-
chlorine pesticide residues in soils (72).
Results of this investigation thus show that plants
grown in soil contaminated with PCBs can absorb these
compounds. How-ever, the amounts taken up by the plant
are relatively small compared to amounts in soil. The up
take may occur through sorption of vapors from volatili
zation of PCBs or through root absorption and transloca
tion. Greater uptake of the less chlorinated biphenyls than their more chlorinated counterparts can be due to their higher volatility in the former and to higher water solubil ity in the latter process.
ACKNOWLEDGMENTS
The authors thank J. Damschroder and M. Birks for able technical
assistance during this investigation and to W. Glowa for gas chromatog
raphic analyses.
.
,
REFERENCES
1. Babish, J. G., G. S. Stoewsand, A. K. Furr, T. P. Parkinson,
C. A. Bache, W. H. Gutenmann, P. C. Wszolek, and D. J. Lisk.
1979. Elemental and polychlorinated biphenyl content of tissues
and intestinal aryl hydrocarbon hydroxylase activity of guinea pigs
fed cabbage grown on municipal sewage sludge. J.- Agric. Food
Chem. 27:399-402.
.
2. Buckley, E. H. 1982. Accumulation of airborne polychlorinated
biphenyls in foliage. Science 216:520-522.
` 3. Chou, S. F., L. W. Jacobs, D. Penner, and J. M. Tiedje. 1978. .
Absence of plant uptake and translocation of polybrominated
biphenyls (PBBs). Environ. Health Perspectives 23:9-12. .
4. Food and Drug Administration. 1980. Code of Federal regulations.
CFR 109.15, 109.30. ,
.
; 5. Flies, G- F-. and G. S. Marrow. 1981. Chlorobiphenyl movement
. from soil to soybean plants. J. Agric. Food Chem. 29:757-759.
6. Frink, C. R., B. L. Sawhney, K. P. Kulp, and C. G._Fredette.
1982. Polychlorinated biphenyls in Housalonic River sediments in
' Massachusetts and Connecticut: Determination, distribution, and
transport. Bull. 800, The Conn. Agr. Exp. Sin., New Haven, CT.
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PCBs in soil. Soil Sci. (in press). .
8. Hutzinger, O., S. Safe, and V. Zitko. 1977. The chemistry of
PCBs. CRC Press, Inc., Boca Raton, FL.
9. Iwata, Y., F. A. Gunther, and W. E. Westlake. 1974. Uptake
of a PCB (Aroclor 1254) from soil by carrots under field condi
tions. Bull. Environ. Contam. Toxicol. 11:523-528.
10. Iwata, Y., and F. A. Gunther. 1976. Translocation of the
polychlorinated biphenyl Aroclor 1254 from soil into carrots under
field conditions. Arch. Environ. Contam. Toxicol. 4:44-59.
11. Jacobs, L. W., S. F. Chou, and J. M. Tiedje. 1976. Fate of polyb-
rominated biphenyls (PBB's) in soils. Persistence and plant uptake.
J. Agric. Food Chem. 24:1198-1201.
' TABLE 2. PCBs (A roclors) in soil and in vegetables grown in soil amended with contaminated sediment during 1981.
Aroclor Soil .
Beet roots
Beet leaves
Turnip roots
Turnip leaves
pg/ke
pg/kg
BP
RBP
P-gAg
BF
RBF
P-gAg
BF
RBF
PgAg
BF
RBF
1248
80
15
1254
1,880
16
1260 14,440
35
.187
94
.008
4
.002
1
22
.275
69
94
.050
12
52
.004
1
30
.375
188
32
.400
200 .
16
.008
4
40
.021
11
20
.002
1
27
.002
1
Total 16.400
66
168
66
99
BF is bioaccumulation factor calculated by dividing the amount (pgAg) of an Aroclor in the plant part by its amount in the soil. RBF is the ratio of Aroclor 1248 or 1254 compared to 1260.
TABLE 3. PCBs (\sg:'kg) in vegetables grown in amended soil during 1982.
Turnips
Beans
Leaves
Roots
Aroclor
Harvest date (1982)
7/31
8/4
8/12
Unpeeled
Peeled
Leaves
Stems
Pods
Seeds
1248
' 27
31
20
32
3
44
37
44
13
1254
59
49
91
61
22
40
0
22
4
1260
52
79
156
204
10
107
36
98
0
JOURNAL OF FOOD PROTECTION. VOL. 47. MARCH 1984
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SAWHNEY AND HANKIN'
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.
r
14. Nakanishi, H., S..Nakamura, andM. Tsutsumi. 1977. Translocation
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.
.. ,
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of carbon-14 activity by plants through the use activated carbon.J.
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cation of polychlorobiphenyls in soil into plants: A study by a method
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352.
"
.
18. Trotter, W. J. 1975. Removing the interference of DDT and itsanalogs
in the analysis for residues of polychlorinated biphenyls. J. Assoc. Off. -
Anal. Chem. 58:461-473.
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test procedures for the analysis of pollutants; proposed regulations.
Fed. Reg. 44:69464-69574.
.
20. Weber, J. B., and E. Mrozek, Jr. 1979. Polychlorinated biphenyls:
Phytoioxiciry, absorption and translocation by plants, and inactivation
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