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C J Kovacs

Publications and source records attributed to C J Kovacs.

At least 19 recordsLinked to original sources

Cytokine profiles in patients receiving wide-field + prostate boost radiotherapy (xRT) for adenocarcinoma of the prostate.

As a result of the association between ionizing irradiation and the induction of inflammatory and fibrogenic cytokines, circulating levels of IL-1alpha, macrophage colony stimulating factor (M-CSF) and TGFbeta were measured in a group of 37 patients who presented with well-defined adenocarcinoma of the prostate and were treated with wide-field pelvic (WFP) + prostate boost (PB) radiotherapy (xRT) according to RTOG protocols 94-08 and 94-13. First and foremost, patients with prostate cancer (PC) were found to have a significantly (p<0.05) elevated plasma level of the three cytokines prior to treatment. Moreover, during WFP + PB xRT, these circulating cytokine levels were further elevated, the elevation occurring in the form of cyclic waves; the concurrent waves of elevated IL-1alpha and M-CSF preceding that of TGFbeta. In addition to providing support for the existence of a humoral response to xRT in patients receiving WFP + PB xRT, the data demonstrated a significant correlation between the integral radiation dose (ID) and the temporal expression and magnitude of plasma IL-1alpha, M-CSF and TGFbeta levels in patients that had received 1-5 fractions (1.8-9Gy) of WFP + PB xRT. Thereafter, the appearance of elevated waves of cytokine expression in the patient's plasma continued independent of additional fractions of WFP + PB xRT.

Adenocarcinoma↗

Determination of plasma trace elements in tumor-bearing animals by proton-induced X-ray emission spectroscopy.

Although altered levels of circulating essential trace elements are known to accompany malignant disease, the lack of sensitivity of conventional detection methods has generally limited their study to clinical conditions involving extensive disease (i.e., significant tumor burden). As such, the application of altered trace element levels as potential prognostic guides or as response indicators subsequent to treatment has been of limited use. During this study, proton-induced X-ray emission spectroscopy was evaluated as a tool to determine trace element imbalances in a murine tumor model. Using plasma from C57B1/6 mice bearing the syngeneic Lewis lung carcinoma (LLCa), levels of Fe, Cu, and Zn, as well as changes in the Cu /Zn ratio, were measured in animals carrying an increasing primary tumor burden. The plasma levels of Fe, Cu, and Zn were found to decrease significantly 7 d following implants of LLCa cells with no significant change observed in the Cu/Zn ratio. By d 21, however, an increase in the Cu/Zn ratio was found to accompany increased growth of the LLCa tumor; the plasma levels of Cu had returned to normal levels, whereas both the Fe and Zn plasma levels remained lowered. Collectively, the results suggest that although a net change in individual plasma trace element concentrations might not be accurately associated with tumor growth, a clear relationship was established between the Cu/Zn ratio and tumor size.

Animals↗

Monoclonal antibody DS6 detects a tumor-associated sialoglycotope expressed on human serous ovarian carcinomas.

A newly developed murine monoclonal antibody, DS6, immunohistochemically reacts with an antigen, CA6, that is expressed by human serous ovarian carcinomas but not by normal ovarian surface epithelium or mesothelium. CA6 has a limited distribution in normal adult tissues and is most characteristically detected in fallopian tube epithelium, inner urothelium and type 2 pneumocytes. Pre-treatment of tissue sections with either periodic acid or neuraminidase from Vibrio cholerae abolishes immunoreactivity with DS6, indicating that CA6 is a neuraminidase-sensitive and periodic acid-sensitive sialic acid glycoconjugate ("sialoglycotope"). SDS-PAGE of OVCAR5 cell lysates has revealed that the CA6 epitope is expressed on an 80 kDa non-disulfide-linked glycoprotein containing N-linked oligosaccharides. Two-dimensional non-equilibrium pH gradient gel electrophoresis indicates an isoelectric point of approximately 6.2 to 6.5. Comparison of the immunohistochemical distribution of CA6 in human serous ovarian adenocarcinomas has revealed similarities to that of CA125; however, distinct differences and some complementarity of antigen expression were revealed by double-label, 2-color immunohistochemical studies. The DS6-detected CA6 antigen appears to be distinct from other well-characterized tumor-associated antigens, including MUC1, CA125 and the histo-blood group-related antigens sLea, sLex and sTn.

Antibodies, Monoclonal↗

Secondary cytokines interact in sequence with interleukin-1alpha (IL-1alpha) with or without macrophage colony-stimulating factor (M-CSF) to further accelerate granulopoietic recovery in myelosuppressed animals.

Interleukin-1alpha (IL-1), by itself, accelerates both granulopoietic and thrombopoietic recovery in the 5-fluorouracil (5-FU) myelosuppressed mouse (FUM). As a primary cytokine, IL-1 also interacts in concert with macrophage colony-stimulating factor (M-CSF) to synergistically enhance hematopoietic recovery in the FUM. As part of our continuing interest in cytokine sequencing, studies were carried out to determine whether the addition of several secondary cytokines (GM-CSF, IL-3, and IL-6) to IL-1 (+/-M-CSF) would further enhance the stimulatory effects of the primary cytokine(s) on hematopoietic recovery in FUM. Throughout these studies, IL-1 (+/-M-CSF) was administered for 2 days to the FUM, and the secondary cytokines were given either in concert (days 1 and 2) or in sequence (days 3-6) or both with the primary cytokine(s). Based on the magnitude of 7-day post-5-FU granulocyte recovery, the results demonstrated that the synergistic effects of IL-1 + M-CSF treatment on granulopoietic recovery in FUM could not be duplicated by substituting either IL-3, IL-6, or GM-CSF for M-CSF. Nonetheless, the secondary cytokines were observed to enhance the stimulatory effects of IL-1 under the following administration schedules: (1) 2 days of IL-1, followed by a sequential treatment (days 3-6) with either IL-3 or IL-6, (2) 2 days of IL-1 + GM-CSF followed by an additional 4 days of GM-CSF alone, and (3) 2 days of IL-1 + GM-CSF followed by 3-4 days of a combination of GM-CSF and either IL-3 or IL-6. Although these cytokine treatment schedules led to an enhanced granulocyte recovery (vs. IL-1 alone) in FUM, the day 7 granulocyte numbers never exceeded those observed after 2 days of IL-1 + M-CSF. Similarly, granulocyte recovery in FUM receiving 2 days of IL-1 + M-CSF followed by either GM-CSF or IL-3 also was significantly greater than that observed with IL-1 + M-CSF alone. In contrast, however, the sequential administration of IL-6 with IL-1 + M-CSF, unlike IL-1, failed to further enhance granulopoietic recovery, suggesting that there may be an antagonism between IL-6 and M-CSF in the FUM. In summary, therefore, the secondary cytokines were found to interact more effectively when they were administered in sequence, rather than in concert, with both IL-1 and IL-1 + M-CSF.

Animals↗

Enhanced platelet recovery in myelosuppressed mice treated with interleukin-1 and macrophage colony-stimulating factor: potential interactions with cytokines having megakaryocyte colony-stimulating activity.

Studies were carried out to determine whether the combination of IL-1 + M-CSF, similar to the effect of these cytokines on neutropenia, was able to reduce the duration of thrombocytopenia in the 5-fluorouracil (5-FU)-myelosuppressed mouse. In addition, comparisons were made between the in vivo effects of IL-1 + M-CSF and other "thrombopoietic" cytokines (e.g., IL-3, IL-6, and GM-CSF) that demonstrate some form of megakaryocytopoietic activity in vitro. Of the five cytokines studied, only IL-1 and IL-6, by themselves, were able to effect thrombopoietic recovery in the myelosuppressed mouse. IL-1, either when acting alone or interacting synergistically with M-CSF, was able to reduce significantly the period of thrombocytopenia, but the effects of IL-6 were restricted to enhancing platelet production during the period of rebound thrombocytopenia without altering the kinetics of thrombopoietic recovery. Moreover, none of the cytokine combinations studied were found to interact to reduce further the duration of thrombocytopenia beyond that observed with IL-1 + M-CSF. Nonetheless, IL-3, IL-6, and, to a lesser extent, GM-CSF were each able to interact with IL-1 + M-CSF to extend further the period of enhanced platelet production in the animal. However, scheduling studies suggested that these thrombopoietic cytokines interacted in sequence, rather than in concert, with IL-1 + M-CSF to enhance platelet production during thrombopoietic recovery. Furthermore, the data presented are consistent with the hypothesis that IL-1 + M-CSF initially acts on a multilineage, 5-FU-resistant target cell and that IL-6 (and possibly IL-3 and GM-CSF) serves as a secondary cytokine further to enhance platelet production during rebound thrombopoiesis in the 5-FU-treated mouse.

Animals↗

Temporal recovery of short-term repopulating HSC subpopulations in marrow following schedule-dependent administrations of IL-1 alpha and M-CSF.

Studies were carried out to establish the temporal effects of abbreviated administrations of IL-1 and IL-1 plus M-CSF as rescue agents on multipotential and short-term repopulating hematopoietic stem cell (HSC) subpopulations in murine marrow treated with a myelosuppressive dose of 150 mg/kg 5-FU. The recovery kinetics for high-proliferative-potential colony-forming cells (HPP-CFC), CFU-S8 and -S12, and both CFU-M and CFU-G compartments were monitored over a 14-day interval in 5-FU-treated bone marrow (FUBM) following daily cytokine injections over a 4-day interval. Both IL-1 and the coadministration of IL-1 and M-CSF rapidly enhanced the recovery of the HPP-CFC in FUBM to supranormal levels and maintained these levels for extended intervals. Moreover, since M-CSF was unable to influence the recovery of the HSC subpopulations in FUBM by itself, the results of the two cytokines amounted to a synergistic effect on the recovery of the HPP-CFC in FUBM and a reduction of severe neutropenia in the myelosuppressed animal. Scheduling studies demonstrated that these synergistic effects were restricted to those schedules in which M-CSF was coadministered with IL-1 during the first 2 days of cytokine rescue. Finally, the recovery curves generated for the HSC and CFU-M subpopulations in response to IL-1 (with or without M-CSF) also suggest that these cytokines may conceivably alter the normal balance between proliferation and differentiation within CFU-S8 and -S12 during the accelerated recovery of hematopoiesis in FUBM.

Animals↗

Stem cell responses in myelosuppressed mice following sequential treatment with recombinant human interleukin 1 (rHuIL-1), recombinant murine interleukin 3 (rMuIL-3) and recombinant human macrophage colony-stimulating factor (rHuM-CSF).

In vivo, recombinant human interleukin 1 alpha (rHuIL-1 alpha) + recombinant human macrophage colony-stimulating factor (rHuM-CSF) (IL-1 + M-CSF) effectively serves as a rescue agent for myelosuppression by enhancing the recovery of hematopoietic stem cell (HSC) subpopulations following treatment with 5-fluorouracil (5-FU). Because in vitro studies have suggested that hematopoietic recovery in 5-FU-treated bone marrow (FUBM) may proceed from a 5-FU resistant, (IL-1 + IL-3 + M-CSF-responsive) high proliferative potential HSC subpopulation of colony forming cells (HPP-CFC), studies were carried out to determine whether the addition of recombinant murine interleukin 3 (rMuIL-3) (IL-3) to either IL-1 or IL-1 + M-CSF would further enhance the recovery of HSC subpopulations in myelosuppressed C57Bl/6 mice. With the exception of the HPP-CFC, IL-3 dampened, rather than enhanced, the accelerated recovery of 8 d and 12 d colony forming units-spleen (8 d and 12 d CFU-S) and the committed macrophage progenitor (CFU-M) associated with in vivo treatment with IL-1 alone. Similarly, IL-3 interfered with the enhanced recovery of those HSC subpopulations in FUBM influenced by the synergistic interaction of IL-1 + M-CSF. This interference, however, was observed only when the rMuIL-3 was administered on day 2 or 3 of a four-day treatment with IL-1 + M-CSF. There was, however, no evidence that IL-3 exerted a negative influence on the restoration of granulocytes in the myelosuppressed animals. Moreover, sequencing studies provided data suggesting that the dampening effects of IL-3 on the synergistic interaction of IL-1 + M-CSF resulted from both an enhanced differentiation of the more primitive HSC subpopulations and a significant, but preferential, mobilization of the more mature 8 d CFU-S and CFU-M to extramedullary organs and that the mobilization of these more mature HSC subpopulations was temporally linked to their generation from the recovering HPP-CFC and 12 d CFU-S subpopulations.

Animals↗

Absence of interleukin 1 alpha radioprotection in tumor-bearing animals: elevated plasma levels of prostaglandin E versus a preexisting primed marrow.

Recombinant human interleukin 1 (IL-1) administered as a "priming" agent 24 h prior to hematopoietically lethal doses of total body irradiation (TBI) confers radioprotection to normal C57B1/6 (B6) mice, but not to B6 tumor-bearing animals (TBAs) known to have altered hematopoietic steady states. Using the Lewis lung tumor (LLca) in the B6 mouse, studies were carried out to determine whether the failure of IL-1 to radioprotect the LLca TBA was related to a preexisting "primed" hematopoietic state in the TBA or resulted from inhibition of myelopoietic activity associated with the production of prostaglandin E (PGE) by, or in response to, the tumor. Both normal B6 and LLca B6 TBAs were injected (every 24 h x 1-5) with 100 micrograms of indomethacin (IND) prior to the administration of IL-1. A single treatment with IND was sufficient to reduce the elevated levels of PGE found in the plasma of the TBAs. After five treatments, IND reduced the PGE level to below that of controls. Neither the acute nor the protracted IND treatment, however, affected the expansion of the stem and progenitor cell compartments of the marrow in the LLca TBA. Furthermore, no evidence of restoration of the radioprotective properties of IL-1 was observed in TBAs pretreated with IND. Collectively, these data suggest that the failure of IL-1 to provide radioprotection to the LLca TBA is not a direct result of the elevated plasma PGE levels associated with growth of the LLca tumor. In addition, these studies provide insight into the importance of examining in vivo effects of biological molecules in altered, as well as normal, physiological states.

Animals↗

Synergy between recombinant human IL-1 alpha (rHuIL-1) and M-CSF (rHuM-CSF) during the recovery of murine hematopoietic activity in myelosuppressed animals: abbreviated versus chronic administration of rHuM-CSF.

The ability of highly purified, recombinant human macrophage colony-stimulating factor (M-CSF) and recombinant human interleukin 1 alpha (IL-1) to rescue hematopoietic activity from the myelosuppressive effects of 5-fluorouracil (5-FU) was investigated in the C57Bl/6 mouse. IL-1 (q24 h x 4) stimulated granulopoietic recovery in the 5-FU-treated animals and reduced the period of severe neutropenia associated with this drug by 7 days. Chronic M-CSF administration (q24 h x 14), on the other hand, resulted in a modest retardation of granulocyte recovery, and, when combined with IL-1, the chronic administration of M-CSF significantly dampened the accelerated recovery of granulopoietic activity observed with IL-1 alone. Consistent with their effects on neutrophil recovery, IL-1 alone markedly enhanced the recovery of the granulocyte erythrocyte macrophage megakaryocyte colony-forming units (CFU-GEMM), macrophage colony-forming units (CFU-M), and erythroid burst-forming units (BFUe) in the marrow, whereas M-CSF failed to demonstrate a significant influence on the restoration of these hematopoietic progenitors (with the exception of delaying the recovery of the BFUe). Unexpectedly, the combination of IL-1 plus M-CSF (q24 h, days 1-4) followed by M-CSF (q24 h, days 5-14) resulted in a more than additive stimulation of progenitor recovery in both the marrow and the spleen that was observed as early as day 3 following 5-FU treatment. Furthermore, in the absence of protracted M-CSF administration on days 5-14, the 4-day rescue with a combination of IL-1 plus M-CSF also resulted in a more than additive effect on the recovery from 5-FU-induced neutropenia. Collectively, these observations demonstrated that IL-1 and M-CSF can interact synergistically to stimulate granulopoietic recovery in the 5-FU-treated animal. However, the data also suggest that the continued administration of M-CSF following the 4-day IL-1 plus M-CSF rescue may interfere with the restoration of neutrophils in the myelosuppressed animal.

Animals↗

Interleukin-1 alpha protects against the toxicity associated with combined radiation and drug therapy.

A dose of total body irradiation sufficient to cause 70% mortality within 30 days (9.5 Gy) and maximally tolerated doses of either adriamycin (10 mg/kg) or cis-dichlorodiammine platinum (8 mg/kg) were administered to C57B1/6 mice and animal survival used as an index of toxicity. Whereas the nature of the toxicity resulting from the radiation alone was hematopoietic, the addition of either drug to the total body irradiation resulted in a pattern of animal death more consistent with that of gastrointestinal toxicity (100% dead within 7 days). However, if the radiation was delivered as a regional abdominal exposure, rather than total body, the gastrointestinal death observed following the combination of total body irradiation drug was not observed. The administration of 2.5 x 10(5) U IL-1 v24 hr prior to total body irradiation demonstrated significant protection against this dose of radiation (90% survival vs 30% survival). Similar protection was also observed when the IL-1 was administered 24 hr prior to the combination of total body irradiation with either drug. While these observations suggested that the IL-1 was protecting against gastrointestinal toxicity, subsequent studies demonstrated that IL-1, in addition to accelerating hematopoietic recovery following radiation insult, was equally effective in advancing the repopulation of the stem cell (CFU-GEMM) and progenitor cell (CFU-M and CFU-GM) compartments following drug treatment. Collectively, the data from these studies demonstrate that the lethal effects resulting from combined total body irradiation + drug treatment contain both a gastrointestinal and a hematopoietic component.

Animals↗

Altered radioprotective properties of interleukin I alpha (IL-1) in non-hematologic tumor-bearing animals.

The radioprotective properties of IL-1 were investigated in the respective murine hosts for the Lewis lung (LLca) and EMT-6 tumors. For these studies, doses of total body irradiation were selected for the C57B1/6 (9.5 Gy) and Balb/c (7.5 Gy) mice that resulted in a 60% mortality over a 30-day interval. When a "priming" dose of 2.5 x 10(5) U IL-1 was administered 24 hr prior to the radiation exposure, animal mortality was markedly reduced (60% vs 5-10%). Under identical experimental conditions, however, the presence of either the LLca or the EMT-6 tumors in their respective host strains was found to compromise the level of radioprotection conferred by this priming dose of IL-1. In Balb/c mice bearing the EMT-6 tumor, a priming dose of IL-1 resulted in only a modest level of radioprotection when compared to non-tumor-bearing control animals (median animal survival increased by 11.5 days). In C57B1/6 mice bearing the LLca tumor, IL-1 failed to demonstrate any evidence of radioprotection. Following a sublethal dose of total body irradiation, the appearance of an accelerated repopulation of the stem cell (8d CFUs and CFU-GEMM) and the myeloid progenitor (CFU-M) compartment in the marrow of the IL-1 primed EMT-6, but not the LLca, tumor-bearing animals was consistent with the hypothesis that the mechanism leading to radioprotection in IL-1 primed rodents involves an accelerated recovery of hematopoietic activity. It was also noted that the presence of the EMT-6 tumor was associated with an increase in the "radiosensitivity" of the Balb/c mouse. Collectively, these data suggest that the use of biological modifiers should be examined under altered physiological conditions prior to attempting to translate them into the clinic.

Animals↗

Tumor-induced altered gastrointestinal steady-states: absence of MHC restriction in the paraneoplastic gastrointestine.

The growth of a number of experimental rodent tumours including the Lewis lung tumour (LLca) progressively compromises the integrity of the host's gastroinestine by inducing cytokinetic alterations in the small bowel resembling those generally defining the intestinal phase of a graft-versus-host reaction (GVHR). To determine whether the induction of this paraneoplastic gastrointestine (PGI) involves, similar to a GVHR, a disparity between the MHC of the donor (LLca tumour) and the recipient (host), PGI development was evaluated in various LLca tumour-bearing murine strains that were either 'syngeneic' [C57BL/6 and BL/10 (H-2b)], 'semisyngeneic' [B6D2F1 (H-2bd) and B6C3F1 (H-2bk)] or 'allogeneic' [C3H/HeJ (H-2k) and DBA/2 (H-2d)] to the H-2b LLca tumour. The temporal appearance and magnitude of a PGI developing in either LLca-syngeneic or semi-syngeneic hosts, but not the allogeneic strains, suggested that the mechanism(s) involved in PGI development like the GVHR, was restricted by the MHC. Subsequent studies using congenic strains [B10.A (H-2k) and B10.D2/nSn (H-2d)], however, demonstrated that the mechanism(s) responsible for the PGI was restricted by the non-MHC loci of the C57BL mouse. These observations were supported by the appearance of a LLca-induced PGI in various B10.A congenic strains carrying mutations at the I-A or I-E/I-J loci of the MHC. Not unlike the intestinal phase of a GVHR, development of the PGI required the participation of enhanced mucosal mast cells which were limited in the WCB6F1 (S1/S1d) but not the (+/+) murine strains. These observations are discussed in light of the postulated premature migration of immature thymocytes that accompany tumour growth and their ability to non-specifically enhance (or suppress) cell mediated immune reactions in the host.

Animals↗

Altered radiosensitivity of hematopoietic stem cells by vincristine pretreatment: superoxide dismutase activity as a possible mechanism.

The effect of vincristine (VCR) on hematopoietic stem cell and progenitor compartments and its ability to induce transient periods of radioresistance was investigated so that we could ascertain the drug-radiation intertreatment interval affording optimal radioprotection and determine if its ability to induce increased levels of superoxide dismutase (SOD) is a potential mechanism for this radioprotection. Measurement of marrow stem cell and progenitor compartments demonstrated that these subsets displayed differential sensitivity to VCR and that this sensitivity appeared to be proportional to how "primitive" the subset was. Treatment with VCR prior to irradiation was observed to enhance significantly both 8- and 12-day spleen colony-forming unit recovery with maximal radioprotection occurring for a drug-radiation interval of 12-48 hours. Monitoring of copper-zinc SOD levels demonstrated an increase in activity following VCR that was localized in a fraction of the bone marrow enriched for stem cells and progenitors. The temporal pattern of this increase, however, did not correlate with the drug-radiation schedules affording optimal radioprotection, which indicates that other factors appear to be operative in this radioprotection as well.

Animals↗

Long-term consequences of chemotherapeutic agents on hematopoiesis: development of altered radiation tolerance.

The long-term effects of chemotherapeutic agents on subsequent radiation tolerance of the hematopoietic marrow were studied after a single injection of doxorubicin, 5-fluorouracil, or cyclophosphamide at a maximum tolerated dose. At designated intervals following drug treatment, drug-treated and age-matched control male B6D2F1 mice were exposed to 4.5 Gy of total-body irradiation, and the recovery kinetics of the stem cell (assayed at days 8 and 13 colony-forming spleen units) and progenitor (burst-forming erythroid units, and colony-forming erythroid and granulocyte/macrophage units) compartments were established. Response deficits were calculated for each compartment by comparison of treated and control recovery curves at 5 intervals over 32 weeks. Based on these response deficits, a number of conclusions were drawn: 1) There is selective drug specificity for the more primitive (13d) and mature (8d) CFUs subpopulations; 2) these sensitivities determine the temporal consequences of drug treatment on subsequent radiation tolerance in the marrow (e.g., acute, delayed, or long term); and 3) drugs that influence long-term radiation tolerance of the marrow are dose dependent and initially affect the more primitive stem cells. The data suggest that the initial lesion in the stem cell compartment, resulting in long-term enhancement of radiosensitivity, involves a major restriction (either in cell number or in genetic functionality) of the proliferative potential necessary for recovery from subsequent radiation insult.

Animals↗

Development of latent residual drug damage to the hematopoietic marrow during the subsequent growth of tumors.

Growth of the Lewis lung (LLca) tumor in BDF1 mice was found to be accompanied by a marked expansion of the multipotential stem (CFUs-8) and committed erythroid (BFUe) and myeloid (CFU-gm) progenitor cells of the marrow with a concomitant depression of more differentiated compartments. The long-term effects of adriamycin (AdR), busulfan (BU), cis-diaminedichloroplatinum II (DDP), and 5-fluorouracil (5-FU) on the LLca-induced expansion of the CFUs-8 and CFU-gm were investigated at eight weeks after drug treatment. Of the four drugs studied, only BU demonstrated a reduction of CFUs-8 at eight weeks after treatment and prior to tumor inoculation. However, all of the drugs were found to prevent the expansion of the CFUs-8 compartment after 16 days of tumor growth. BU also resulted in a depressed CFU-gm compartment at the time of tumor inoculation, while CFU-gm in ADR-, DDP-, and 5-FU-treated animals was either at control levels (AdR), or unexpectedly elevated (DDP and 5-FU). Similar to the observations made for CFUs-8, all drugs prevented the expansion of the CFU-gm associated with tumor growth. The data suggest that qualitative differences observed between the long-term effects of the drugs on the marrow compartments may be more accurately related to the temporal "fixation" of residual drug damage brought about by enhanced differentiation of a drug-limited pluripotential CFUs, than to the actual magnitude of hematopoietic damage.

Animals↗

Residual adriamycin (AdR)-induced hematopoietic damage: a consideration for subsequent radiotherapy.

The long-term effect of adriamycin (AdR) on the radiation response of hematopoietic marrow was studied at 16 weeks after treatment with a MTD (10 mg/kg) for the BDF1 mouse. The radiation response was monitored in both the "stem cell" (CFUs-8) and myeloid (CFU-gm, granulocyte, WBC) compartments, as well as the erythroid (BFUe, CFUe, HcT) compartments of the marrow for 14 days following a whole body dose (TBI) of 4.5 Gy X ray. At the time of irradiation, animal and spleen weight of AdR treated animals were reduced while HcT and WBC remained at control levels. At the same time the granulocyte and CFUs-8d compartments were depressed, while the BFUe compartment was expanded. The CFUe and CFU-gm compartments remained at control levels. For all marrow compartments, treatment with AdR 16 weeks prior to 4.5 Gy resulted in a radiation response deficit determined from the temporal recovery curves. The data suggest that manifestation of long-term AdR injury, at least through 16 weeks following treatment, is dependent on a subsequent stress of sufficient magnitude to enhance the proliferative activity associated with hematopoietic cell production and differentiation. A comparison is made between these observations and previously reported long-term drug-induced hematopoietic injury.

Animals↗

Haemopoietic modulation in tumour-bearing animals: enhanced progenitor-cell production in femoral marrow.

Altered haematopoiesis in the femoral marrow was observed in mice bearing the Lewis lung carcinoma (LLca). During tumour growth, a marked reduction was observed in the myeloperoxidase-positive cells (granulocytes) of the marrow 7 days after inoculation of the LLca tumour reaching a nadir (17% of control) by day 28. Accompanying this suppression of mature white cells was a gradual expansion of the CFUc-GM compartment followed by an increase in the number of femoral CFUs. Humoral-stimulating activity (HSA) increased through day 14 in the serum of these animals; then returned to control levels by day 28. During this same interval, the more primitive erythroid progenitor (BFUe) compartment expanded to 168% of control, while the more differentiated (CFUe) compartment was reduced (45% of control at day 28). Reductions in both 59Fe-incorporation and erythroblasts/femur confirmed the suppression of erythroid differentiation in marrow during tumour growth. Similar results were observed following the daily injection (188 mg equivalent dose; q 24 hr X 10) of the supernatant prepared from LLca tissue. Marked differences were observed between the response of the spleen and the marrow to the supernatant. The data suggest that the growth of the LLca tumour results in a dissociation of the normal continuity of haematopoietic steady-state differentiation in the marrow of tumour-bearing animals.

Animals↗

Digestive tract cell proliferation and food consumption patterns of Ha/ICR mice.

The relationship between the daily pattern of food consumption and the proliferation rate of the oesophagus, stomach, forestomach, small intestine and colon of Ha/ICR mice was examined. Proliferative activity was determined by [3H]TdR incorporation on a wet weight tissue basis, along with selective counting of labelled nuclei. Under conditions of ad libitum feeding with a 12 hr light cycle (lights on at 0600) mice eat most of their food during the dark period. A distinct circadian rhythm was observed in the oesophagus, stomach, forestomach and colon with the peak of [3H]TdR incorporation between 0400 and 0600 and the nadir between 1600 and 1800. Although a circadian fluctuation was observed in the small intestine, its amplitude was much less than in other areas. This rhythmic change in proliferation rate could be phase shifted by allowing the mice to feed only between 0800 and 1600 for 14 days. Under these conditions the peak in proliferative activity occurred between 1800 and 2000. Fasting reduced the daily level of proliferative activity in all of the digestive tract sites studied, and for all areas except the oesophagus greatly reduced or eliminated the circadian fluctuation. The forestomach and colon were the most influenced by fasting with 24 hr [3H]TdR incorporation reduced to 30-40% of the control value. Refeeding following a 48 hr fast produced a rapid increase in proliferative activity peaking at levels well above the control value at 16 hr after the onset of refeeding. The major exception to this was the small intestine which slowly returned to the control value during the first 24 hr. Partial refeeding produced a diminished refeeding response. Once the normal pattern of food consumption was re-established following refeeding the normal proliferative fluctuations were again observed.

Animals↗