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ANALYTICAL INTERFERENCE WITH THE DETERMINATION OF DDT BY POLYCHLORINATED BIPHENYLS IN THE ENVIRONMENT
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A number of polychlorinated biphenyls (PCBs) have been commercially available In the U.S. since 1930. Currently PCBs are being marketed by Monsanto Chemical Company under the trade name of Aroclor with the percentage chlorine.designated by the last tyro digits of their four digit identification number. The first two digits indicate the type; for example, the 1200 series for the biphenyls which are the most common. In the environment, PCBs behave like DDT and many other organochlorine pesticides. PCBs are very stable, resist degradation, are insoluble in water and highly soluble in lipids. It is inevitable, therefore, that PCBs would be concentrated in biological systems since they possess all the characteristics associated with DDT and its metabolites. PCBs are extracted and detected by the same techniques employed for the organo chlorine pesticides and consequently residue chemists have had to develop adequate analytical procedures to separate them from, associated chlorinated pesticides, prior to quantification. '
Prior to 1267, PCBs were either misidentified as specific pesticides such as DDT or viewed as unidentified compounds, possibly unknown pesticidal metabolites. PCBs were previously evident as extraneous, unidenti fied peaks in GLC.chromatograms of extracts of marine fish and birds, until identified in 1966 by Jensen and by Widinark in 1967 and Holmes et al_. (1967). It was not until a year or two later that federal monitoring and surveillance sample analysis began to include any routine screening for PCBs, in addition to the usual screening for chlorinated pesticides. The timelag between use and the detection of
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PCBs in the environment can be attributed to accumulative concentration
over the years and/or recent sophistication in analytical techniques
and Instrumentation.
The presence of PCBs, DDT and DDT-like moieties in environmental
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samples presents the residue chemist with both a qualitative and quanti
tive analytical problem. Because of the similiarity of retention
times of gas chromatographic peaks, concentration of certain PCBs can
interfere with the accurate determination of p,p'-DDT, p,p'-DDD and
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p,p'-DDE depending on the type of GLC column employed. One of the
most common PCRs found in the U.S. environment, Arcolor 1254, inter
feres with the GLC peaks associated with p.p'DDT and p.p'DOD and
p.p'DDE. Another common PCB, Aroclof 1260, interferes the least
with peaks associated with p.p'DDE. The seriousness of the PCB
Interference or bias In DDT, ODD, and DDE quantifications per se by
gas chromatography is dependent on several interrelated factors such
as the polarity of the gas chromatographic column packing, the
percentage of chlorine In the particular Aroclor being chromatographed,
and the concentration and ratio of PCB and DDT and metabolites in tho
extract. j
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Considering the most common Aroclors found in the environment, such as 1254 and 1260, unless the ratio for PCB:DDT concentration in the sample is greater than 2:1, the PCB bias to accurate quantifi cations of DDT and its metabolities by electron capture gas chromatography will be relatively negligible. The PCB bias will . Interfere and can become serious if the ratio of PBC:00T concentration in the environmental sample approaches .5:1 or higher. One reason for
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tlvis Is that electron capture detector usually employed in the gas
chromatography is considerably less sensitive to the PCB mixture
than to individual DDT compounds on a c'dmparativ'e weight'basis.
The analytical problems associated with separating PCBs from
DDT, ODD and DDE have largely been overcome in the past few years.
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It cannot be said that the extraction and isolation recovery of
PCBs is absolutely quantitative but it can approach 80-902 if
adequate preliminary procedures are carefully followed. Separation
of-PCBs by column chromatography using Florisil has been reported
for several pesticides by Reynolds (1969), but p,p'-DDE Is eluted
along with the PCBs. Armour and Burke (1970) have developed a
separation of the DDT analogs and PCBs by employing a silicic acid
column. Identification of these Interfering PCBs by combined gas
chromatography - mass spectrometry has been reported by Widmark
(1967) and more recently by Bagley et al_. (1970) using a thin-layer
chromatography preliminary separation followed by GLC-mass spectrom
etry. Separation and identification of DDT analogs in the presence
Of PCBs by two dimensional TLC has recently been proposed by Westfall
and Fehringer (1970).
Based on current data, results obtained from environmental
monitoring and market surveillance sampling of various foods and
other published data, it appears that the most serious chronic PCB
contamination is in fish and fish-eating birds. Apparently
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widely distributed among marine birds which are the terminal carnivors
of a complex mesh of food chains in the sea. Concentrations of DDT and
PCB in marine birds tend to be an order of magnitude higher than in
marine fish according to Risebrough et,a]L (1968). Occasional acute PCB
contamination occurs in various areas of our environment leaving the
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mistaken Impression that serious PCB contamination is a universal
problem. Most of the acute residues of PCBs found to date can be
attributed usually to inadvertent or accidental Industrial causes.
A recent example of acute PCB contamination in poultry was traced
to contaminated fish meal resulting from un/ioticed leakage of PCBs
in the sterlizing vats. The PCB contamination found currently in
fruits, vegetables, and in most samples of milk, cheese and eggs
appear to be relatively insignificant, at least as to posing a
serious analytical bias to DDT or ODE determinations of these
samples.
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.. Undoubtedly, prior to recent cognizance by the chemists of
possible PCB interference, some of the peaks or portions of them
could have been erroneously attributed to DDT, ODD or DOE presence
in the sample, particularly if adequate conformation procedures were
not followed. In many environmental samples, the seriousness of the
PCB bias on the DOT quantification is dependent on the significance
of the DDT concentrations in the sample. According to Risebrough
ct ! (1969), although p,p* DDE is the most abundant of the DDT com
pounds in the environment, there appears to be no significant PCB
Interference in DDE quantifications. Consequently, he concludes
that total DDT residues, in the past, before the extent of PCB inter
ference was known, would not be greatly changed after correction
for this interference.
In summary and based on the rather limited knowledge currently
available, it would apnear. that generally the PCB bias to the analytical
determination of DDT, ODD or DDE has been and continues to be insignificant
In most foods, feeds and environmental samples. An cxcention, where it
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appears there may sometimes be serious analytical bias due to the
presence of high ratios'of PCBiDDT, would be fish and fish-eating
-birds and any associated byproducts.
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Recent reports of PCB content in human adipose tissues Indicated
that the PCB problem is not of widespread fdncern. Undoubtedly iso
lated cases of abnormally high PCB levels will continue to be reported
but these are considered to be the exception rather than the rule.
The degree of carcinogenicity of the various common environmental
PCBs remains to be elucidated as well as a more complete evaluation
of their relative toxicity to mammals. There is limited information
.that toxicity Is associated with, the percentage of chlorine but
generally the Aroclors are less toxic to mammals than DDT and its
metabol1tes.
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