
Research article
Select search scope: search across all journals or within the current journal

Over the last 15 years, substantial progress has been made in understanding the potential and the limitations of the CA 125 assay. More than 2000 papers have been published concerning laboratory and clinical studies of CA 125. The original CA 125 assay utilized the OC 125 antibody that recognizes the CA 125 epitope on a high molecular weight glycoprotein. Despite repeated attempts, the gene encoding the peptide component has not yet been cloned. Monoclonal antibodies have been raised against other epitopes expressed by this molecule, leading to the development of the CA 125-II assay that exhibits less day-to-day variation. Using either assay, elevated levels of CA 125 are detected in a number of benign conditions, including endometriosis. CA 125 is most consistently elevated in epithelial ovarian cancer, but can be expressed in a number of gynecologic (endometrial, fallopian tube) and non-gynecologic (pancreatic, breast, colon and lung) cancers. The best established application of the CA 125 assay is in monitoring ovarian cancer. The rate of decline in CA 125 during primary chemotherapy has been an important independent prognostic factor in several multivariate analyses. Persistent elevation of CA 125 at the time of a second look surgical surveillance procedure predicts residual disease with >95% specif city. Rising CA 125 values have preceded clinical detection of recurrent disease by at least 3 months in most, but not all studies. Given the modest activity of salvage chemotherapy, this information has not yet impacted on survival. Rising CA 125 during subsequent chemotherapy has been associated with progressive disease in more than 90% of cases. CA 125 may serve as an effective surrogate marker for clinical response in phase II trials of new drugs. CA 125 levels can aid in distinguishing malignant from benign pelvic masses, permitting effective triage of patients for primary surgery. Early detection of ovarian cancer remains the most promising application of CA 125. An algorithm has been developed that estimates the risk of ovarian cancer (ROC) based upon the level and trend of CA 125 values. A major trial has been initiated that uses the ROC algorithm to trigger transvaginal sonography and/or subsequent laparotomy. Such a trial could demonstrate improvement in survival through early detection. This strategy should provide adequate specificity, but sensitivity for early stage disease may not be optimal. In the future, improved sensitivity may be attained using multiple markers and neural network analysis. Most serum tumor markers have been proteins or carbohydrates, but lipid markers such as lysophosphatidic acid deserve evaluation. Genomic and proteonomic technologies should identify additional novel markers.
In 1997 CA 125 celebrated its 15th anniversary. Since the discovery of OC 125, an antibody that recognizes CA 125, by Bob Bast and his colleagues, considerable progress has been made toward the development of more sensitive and more precise assay systems. However, a great deal of mystery still remains about the CA 125 molecule and further enlightenment will probably not come until the gene for CA 125 is cloned and the complete open reading frame for the peptide core identified. In the meantime, we have learned some structural features of the CA 125 molecule as well as a little about its regulation and the requirements for its secretion or release from epithelial derived cells in cultures. The CA 125 molecule is almost certainly a glycoprotein with a predominance of O-linkages. It is heterogeneous with regard to both size and charge, most likely due to continuous deglycosylation of side chains during its life-span in bodily fluids. It exists as a very large complex (perhaps as much as 4 million daltons) under natural conditions. The core CA 125 subunit is in excess of 200,000 daltons and it retains the capacity to bind both OC 125 class antibodies and M 11 class antibodies. As a denatured purified subspecies the CA 125 molecule appears to autoproteolyse presumably due to an endogenous protease activity inherent to the molecule. Release or secretion of CA 125 appears directly linked to the epithelial growth factor receptor signal transduction pathway. Prior to its release from cultured cells, CA 125 is phosphorylated (at either/both serine and threonine) and dephosphorylated when released. To stimulate discussion on the regulation of CA 125 synthesis, its secretion and its structural configuration, we have presented a model of a theoretical CA 125 molecule. Perhaps it will provide a focus of attention until the CA 125 gene is cloned and the real molecule is described.
CA 125 has two main immunogenic areas reactive with mouse and rat monoclonal antibodies. These areas are defined by the antibodies OC 125 and M11, respectively. Antibodies related to the main groups are named OC 125-like and M 11-like antibodies. The OC 125-like antibodies can be subgrouped into four sets, whereas the M 11-like antibodies segregate into many closely related binding specificities. One M 11-like antibody, ZR38, is not fully inhibited by any other M 11-like antibody and therefore represents a distinct subgroup. A single antibody, OV 197, is related to some OC 125-like antibodies, but not to OC 125. However, OC 125 enhances binding of OV 197 to its epitope. A new antibody, 7C 12, induces conformation changes, affecting binding of some M 11-like and some OC 125-like antibodies.
CA 125 exists as very large molecules that can be partly disrupted by SDS and heat. The form found in serum might be a degradation product from a larger molecule found in the abdominal and other serous cavities.
The antigenic determinant CA 125 is a high molecular weight glycoprotein which is elevated in more than 80% of patients with epithelial ovarian cancer. Despite its good performance as a human tumor marker, only little is known about its physiological function. According to recent publications, CA 125 production and release appear to be related to cellular growth. In order to investigate this putative relationship more closely, we analyzed the pattern of CA 125 production and release by ovarian cancer cells during exponential cell growth, during cell cycle arrest by colchicine and during inhibition of cellular protein synthesis by cycloheximide. The results were correlated with the cell cycle distribution. According to our results, the main determinant of CA 125 release into the culture supernatant is the total cell count. Although cell cycle arrest in the G2 + M phase by means of colchicine treatment resulted in the death of most cells, which was reflected by an increased release of CA 125, no differences in the intracellular production rate between colchicine treated and untreated cells were seen. In contrast, treatment of cells with cycloheximide not only resulted in decreasing cell numbers but also in a complete inhibition of CA 125 production by surviving cells.
CA 125 shedding is not a constitutive and stable process but may be affected by cell cycle and cell proliferation as well as by various growth factors and cytokines. Interferons, interleukin-1β, tumor necrosis factor-α and transforming growth factor-α have been shown to induce while glucocorticoids and transforming growth factor-β have been shown to suppress the release of the tumor marker CA 125 from ovarian carcinoma cells. Several endogenous as well as exogenous factors may affect CA 125 biosynthesis; however, a major question remains whether this observed modulation of CA 125 expression in vitro is of clinical importance.
CA 125 is known as the marker that is most strongly associated with epithelial gynecological tumors. Compared to the number of publications on its use in serum assays, the application in immunohistochemistry is still limited. The availability of many good antibodies that perform well in formalin-fixed paraffin-embedded tissue opens good possibilities for a wider use. Outside the gynecological tract several other structures may react positive for CA 125. Among these are the lung and breast but also the epithelial cells of the conjunctiva and to some extent prostate glandular epithelium. In the fetus reactions can be found in the serosal linings of body cavities but also in the esophagus and skin. In diagnostic pathology CA 125 plays a role in identifying the primary locations of metastatic carcinoma of unknown origin. It is recommended to use CA 125 antibodies not in a solitary setting but in combination with CEA, BRST-2 and Vimentin to discriminate best between the most frequent sites of origin of metastatic carcinoma. Regular analysis of sensitivity/specificity ratios in a balanced population, representing the composition of the patient population seen in daily practice, should be performed to evaluate the position of CA 125 in diagnostic immunohistochemistry.
Ovarian cancer has the worst prognosis of any gynaecological malignancy, primarily because it tends to present at an advanced stage. The excellent survival rates of early stage disease have provided the rationale for efforts to detect ovarian cancer early by screening, in the hope that survival rates will be improved. Available data suggests that CA 125 is elevated in the majority of epithelial ovarian malignancies prior to clinical presentation. Large trials of screening for ovarian cancer indicate that using a CA 125 cutoff value of 30 U/mL has good sensitivity, but inadequate specificity for detecting preclinical disease. Use of transvaginal ultrasonography as a second-line test in women with elevated CA 125 levels improves specificity to acceptable levels, as does use of a mathematical algorithm which analyses rates of change of CA 125. Two major randomised controlled trials, investigating the effect of screening strategies incorporating CA 125 on mortality, are currently underway.
Between 1986 and 1990 50 patients with ovarian cancer were submitted to a procedure which we called REGAJ - resection guided by antibodies. Using the radiolabeled murine monoclonal antibody OC 125, microscopic ovarian tumors producing CA 125 were detected during second-look surgery by a hand-held probe. Retrospective analysis after 10 years revealed that this procedure resulted in the cure of 4 of 11 patients, who would otherwise have been considered tumor free during second-look surgery and not further treated. Previous problems associated with the method can now be solved so that the clinical value of the procedure should be reconsidered.
CA 125 is not a specific tumor marker, and is synthesized by normal and malignant cells of different origin (mainly in tissues derived from the müllerian epithelia) in a similar proportion. Abnormal CA 125 levels may be found in fluids of different origin (ascites, pleura, pericardium, amniotic fluid, cyst fluid, bronchoalveolar fluid, etc.) and in serum from patients with these fluids. Differences in serum CA 125 found in malignant or benign diseases may be related to the number of cells that synthesize the marker, and are highly dependent on the access to serum, where the marker is normally determined. Moreover, CA 125 is a very good tumor marker in ovarian and lung cancer. The sensitivity of CA 125 in ovarian cancer is related to stage (40–95%), histological type (lower levels in mucinous adenocarcinoma), and the marker is useful in the early detection of recurrence (sensitivity 80%) and in therapy monitoring. It's sensitivity in lung cancer is lower than in ovarian cancer, 39% in locoregional malignancies and 69% in metastastatic disease, but clearly related to stage and histology (mainly in adenocarcinomas and large cell lung cancer) and it is useful in prognosis and disease monitoring.
The tumor marker CA 125 was initially thought to be specific for ovarian malignancies. Subsequently it was found to be raised in a variety of benign conditions, including pregnancy, pelvic inflammatory disease, tuberculosis and cirrhosis of the liver. With respect to gynecological tumors, CA 125 may be elevated in benign ovarian cysts, tubo-ovarian abscess, endometriosis, hyperstimulation syndrome, ectopic pregnancy and fibroids. These results demonstrate that CA 125 is a marker of non-specific peritoneal conditions.
Data from interlaboratory surveys for the determination of CA 125 (1987 to 1998) show large differences depending on the commercial kit used. Samples of the same material produced different analytical results in different interlaboratory surveys, thus showing that some kits did not have a satisfactory rate of reproducibility over a longer period of time.