Native and heat denatured fibrinogen are the basis for various matrices used to establish hemostasis as well as for constructing biomedical devices. For example, fibrin microbeads (FMB) prepared by a heated ( approximately 70 degrees C) oil emulsion process were reported to be attractive to mesenchymal-type cells, such as fibroblasts, endothelial and smooth muscle cells, and useful for isolating mesenchymal stem cells from bone marrow. Here, we examined the solution properties of fibrinogen subjected to heat (47-60 degrees C). Fibrinogen exhibited maximal stability of pH(max stab) = 6.8. At physiologically relevant concentrations, Ca(II) stabilized and Zn(II) destabilized fibrinogen against heat denaturation. Scanning electron micrographs (SEM) of precipitated, heat denatured, fibrinogen showed globular structures ( approximately 400 nm diameter), composed of aggregates of >3000 fibrinogen monomers. Monoclonal antibodies (MAb) to various regions of fibrinogen, as well as two polyclonal antibody (Ab) to haptotactic peptides (Haptides) equivalent to or near the C-termini of beta and gamma-chains (beta(463-483) and gamma(372-391/411)), were used to monitor epitopic changes of fibrinogen bound to and heated on plastic ELISA plates. The pattern of altered Ab binding indicated that fibrinogen heat denaturation on plastic exposed the C-terminal epitope gamma(397-411) as well as Haptide epitopes (beta(463-483) and gamma(372-391)). Immuno-staining of FMB prepared by a heated (below 75 degrees C) oil emulsion process, also presented many exposed Haptide epitopes, which probably helped to attract cells. Our results indicated that moderately heat-denatured fibrinogen, in the form of FMB, could be used for cell culturing and biomedical applications.
We describe the performance of fibrin glue (FG) as modulated by heparin, aprotinin, or factor XIII levels. In vitro tests and a rat kidney excision model demonstrated that the hemostatic efficacy of fibrin was not modulated by aprotinin. Overlapping rat skin sections demonstrated that adhesion strength (AS) was proportional to the area of overlap as well as to fibrinogen levels. AS was not modulated by exogenous heparin or aprotinin and was independent of the endogenous factor XIII in fibrinogen. SDS-PAGE developed by Coomassie or Western blots with anti-gamma chain antibody confirmed that normal skin sections contain adequate trans-glutaminase to maximally cross-link normal, as well as XIII-depleted, fibrin. Fibrin glue (FG) sprayed onto rat skin incision wounds with a dual channel spray applicator acted in 2 phases: initially (day 1), compared to wounds stapled without or treated with only thrombin, FG significantly increased breaking strength. In the second phase of wound healing (after day 3), all groups achieved increased but equivalent breaking strength. FG containing aprotinin (to 3000 U/m; Immuno, Behringwerke, Germany) exhibited initial tissue bonding strength equivalent to fibrin without aprotinin, but histological examination showed delayed fibrinolysis and a concomitant slower regeneration of granulation tissue. Thus, our data indicated that aprotinin was not particularly beneficial to wound healing and that the endogenous factor XIII level in the fibrinogen did not contribute significantly to skin bonding. Rather, the tissue supplied adequate trans-glutaminase activity required to crosslink fibrin to itself and to the tissue.
We tested the ability of purified, ultraviolet C virally inactivated components of human fibrin sealant (FS) to modulate the chemotaxis, adherence, and proliferation of cultured cells. A fibrin clot formed on a near-confluent layer of human fibroblasts (HFs) recruited cells from the surrounding area. Thrombin (Thr) enhanced HF proliferation by a factor of 1.5 to 1.8, whereas fibrinogen (Fib) exerted only a minimal proliferative effect. We developed a new cell haptotactic/attachment assay by using Thr and Fib covalently bound to Sepharose beads (SBs). The kinetics of cell binding were approximately equivalent for beads coated with either protein. Uncoated SBs or fibrinogen-bound SBs (Fib-SB) pretreated with plasmin did not attract HFs. alpha Thr-SB induced a positive migratory response that was not affected by blocking its proteolytic site, whereas gamma Thr-SB elicited no response. X irradiation of HFs at a dose of 6 Gy showed that the migratory response of HF is independent of proliferation, as confirmed by a bromodeoxyuridine uptake assay. Several types of cultured cells (murine fibroblasts, smooth muscle cells, aortic endothelial cells, and murine mammary carcinoma cells) also attached to Fib-SB. By contrast, human keratinocytes, human ovarian carcinoma cells, murine macrophage-like cells, leukemic cells, and murine mast cells did not attach, Our results provide some mechanistic insights into the haptotactic and proliferative effects of Fib and Thr on different cells.
Responses to the combination of cisplatin (CDDP) and radiation in experimental and clinical studies have been reported to vary from high radiosensitization to clear sub-additivity. We examined the combined effect of CDDP with ionizing radiation in both murine mammary adenocarcinoma (EMT-6) and human ovarian carcinoma (OV-1063) cells with special reference to the duration of CDDP exposure and timing of irradiation. Cell survival was measured with a colorimetric assay of cell density. The nature of interaction of cisplatin and radiation was evaluated using isobolograms and a combination index (CI). Exposure of both cell lines to CDDP for 24 hr before irradiation yielded an additive or slightly sub-additive response only if the exposure was extended for a few more hours after irradiation. In EMT-6 cells, the combination of radiation with subsequent continuous as well as short-term (4 to 6 hr) CDDP treatment was found to have a clear sub-additive effect; dose escalation of each modality reduced the additional effect of the other. The sub-additive effect may be explained by a radiation-induced arrest of cells in late S phase, which was dose- and time-dependent. Post-radiation exposure to CDDP further increased the S-phase arrest. In contrast, a 2 hr post-radiation drug exposure resulted in a supra-additive combined effect. Our results stress the crucial role of the timing and the doses of both modalities as well as the duration of post-radiation drug exposure on their combined effect. Int. J. Cancer 75:635–642, 1998. © 1998 Wiley-Liss, Inc.
The virus safety of blood derivatives continues to be of concern, especially with respect to nonenveloped and/or heat-stable viruses. Previously, we demonstrated that treatment of whole plasma, AHF concentrate or fibrinogen with short wavelength ultraviolet light (UVC) results in the inactivation of > or = 10(6) infectious doses (ID) of encephalomyocarditis virus (EMCV), hepatitis A virus (HAV) and porcine parvovirus (PPV), each of which is nonenveloped. Protein recovery was enhanced greatly by inclusion of the flavonoid, rutin, added prior to UVC exposure to quench reactive oxygen species. We now report on the treatment of albumin and intravenous immune globulin (IVIG) isolated by a previously described, integrated chromatographic method. Albumin was treated with either 0.1 or 0.2 J/cm2 UVC in the presence of 0.8 or 1.6 mM rutin; IVIG was treated with either 0.05 or 0.1 J/cm2 UVC in the presence of 0.5 or 1.0 mM rutin. Our results show that > or = 10(6.9) ID of EMCV and PPV were inactivated under each of the conditions studied except the treatment of albumin with 0.1 J/cm2 UVC in the presence of 1.6 mM rutin where 10(4.3) ID of EMCV and > or = 10(6.9) ID of PPV were killed. It appears that the sensitivity of PPV to UVC exceeds that of EMCV and that virus kill with UVC is higher in IVIG than in albumin. In the absence of rutin, UVC increased the extent of aggregation of both albumin and IVIG by two- to three-fold. With rutin present, the increase in albumin aggregation was reduced, and it was virtually eliminated by subsequent processing on Sephacryl S-200, a step in the existing procedure designed to remove aggregates. The increase in aggregation of IVIG appeared to be eliminated on inclusion of either 0.5 mM or 1 mM rutin. We conclude that both albumin and IVIG can be treated with UVC to inactivate > or = 10(6) ID of nonenveloped viruses. The inclusion of rutin during treatment helps protect against protein aggregation.
Fibrinogen solutions were irradiated with UVC (254 nm) to inactivate contaminating viruses. In order to protect fibrinogen during UVC irradiation, 0.5 mM rutin was added prior to UVC exposure and subsequently removed during processing. Viral kill by 0.1 J/cm2 UVC resulted in the following inactivation values (log 10): non-lipid-enveloped viruses: Parvo > or = 5.5; encephalomyocarditis virus > or = 6.5; hepatitis A virus > or = 6.5: lipid-enveloped viruses: human immunodeficiency virus > or = 5.7; vesicular stomatitis virus > or = 5.7. Fibrinogen irradiated with 0.5 mM rutin did not significantly differ from unirradiated material in terms of clot time and breaking strength. In the absence of rutin, UVC irradiation of fibrinogen at similar fluence led to loss of solubility, increased clot time and the cleavage of fibrino-peptides that reacted with dinitrophenyl hydrazine as a test for ketonic carbonyl groups. High-performance liquid chromatography and mass spectrometry data showed that rutin exposed to UVC formed numerous breakdown, oxidation and combinational products. Experiments with 3H-rutin showed that after UVC irradiation, subsequent processing by a C18 resin and alcohol precipitation removed > 99% rutin, representing < 10 ppm rutin in the final fibrinogen preparations. Residual 3H-rutin was not covalently bonded to the fibrinogen. Immunochemical studies with rabbit antisera to UVC irradiated (with rutin) fibrinogen showed the absence of neoimmungens. By all measures, rutin prevents fibrinogen degradation during virucidal UVC irradiation.
The use of cisplatin (CDDP) as a potential radiosensitizer in tumors is controversial. Reports about CDDP interaction with radiation range from high radiosensitization to a clear sub-additive effect. We examined the effect of the combination of different concentrations of CDDP with radiation in murine mammary adenocarcinoma (EMT-6) and human ovarian carcinoma (OV-1063) cell lines. CDDP was given in the dose range of 0.01-3.0 micrograms/ml and radiation in the dose range of 1-6 Gy. A methylene blue assay of cell density was used for the evaluation of cell survival and rate of proliferation in 96-microwell plates. The validity of this assay for evaluation of cell survival was verified by colony-forming assay and radiolabeled thymidine uptake. The dose response to CDDP for both OV-1063 and EMT-6 cells lines was examined; the ID50 was 0.06 and 0.9 micrograms/ml respectively. A sub-additive effect of the combination of radiation with CDDP was clearly observed in the two cell lines tested; the increase in dose of each modality resulted in a decrease of the relative contribution on the effect of the other. These findings question the rationale of combining CDDP with radiation for the enhancement of tumor response, since with the increase in the dose of either modality the additional effect of the other decreases.
Cisplatin (CDDP) administration by the intra-arterial hepatic route (i.a.h.) in patients with primary or metastatic liver malignancies could enhance the anti-tumor activity of the drug and reduce its systemic toxicity. The aim of the present study was to compare Pt pharmacokinetics and the toxicity of the circulating drug after i.a.h. versus intravenous (i.v.) administration. CDDP pharmacokinetics was followed-up in 11 i.a.h. courses given to 7 patients with liver malignancies and compared with 19 i.v. courses in 15 patients with cancer of different origins. The Pt level in blood was monitored by sensitive atomic absorption spectrometry. The dose given was in the range of 25-80 mg/m(2)/treatment. For analysis and for comparison purposes, the data from both CDDP treatments were normalized to a standard dose of 35 mg/m(2). The mean peak Pt level for i.a.h. treatment was found to be about half of the mean peak value for i.v. administration with a similar dose-independent bi-exponential rate of elimination i.a.h. CDDP treatment was relatively well tolerated with no symptoms of either nephro- or neurotoxicity. For in vitro evaluation of peripheral CDDP toxicity, a sensitive ovarian carcinoma cell line, OV-1063, was used. A cytotoxic effect was recorded only within 2 hr following high-dose i.v. CDDP treatment. A substantial fraction of the drug given by the i.a.h. route was found to be extracted by the liver in the first passage, with reduced drug level in the peripheral blood plasma relative to the dose given. This may explain the apparent diminution of side-effects following i.a.h. CDDP treatment. (C) 1995 Wiley-Liss, Inc.
To determine the relative strengths of various biologic adhesives at several timepoints, we compared thrombin-activated SD (solvent-detergent treated) cryoprecipitate with laser- activated SD cryoprecipitate and a laser-activated, albumin-based glue. Male Sprague-Dawley rats (n equals 79) received four, 3-cm, dorsal skin incisions which were closed with either laser- activated cryoprecipitate, laser-activated albumin solder, thrombin-activated cryoprecipitate, or standard skin staples. The cryoprecipitate was derived from pooled human plasma and was treated with a solvent-detergent process, rendering it free of envelope-coated viruses (i.e., HBV, HIV). An 808-nm diode laser was used to activate each solder with an average duration of exposure of 75 seconds per incision. Animals were sacrificed for evaluation of wound tensile strength and histology at 0 hours, 2 hours, 4 hours, and 4 days. At all timepoints tested, laser-activated solders were significantly stronger than thrombin-activated cryoprecipitate (p < 0.03) and control wounds (p < 0.003). There was no significant difference in tensile strength between the two types of laser-activated solder at any timepoint.
Background. Treatment with high-dose cisdiammine-dichloroplatinum (II) (cisplatin, cDDP) often is associated with late complications, predominated by peripheral neuropathy. Pt deposition in different tissues may play a key role in the induction of many of these effects. Main topics of interest include the relationship between cDDP doses given during treatment and the long-term pharmacokinetics of the drug complexes in normal tissues and blood. Noninvasive examination of Pt in tissues during and after cDDP treatment are needed to clarify these points.Methods. A novel, high-sensitivity diagnostic x-ray spectrometry (DXS) method was used for the fast, noninvasive analysis of Pt in external tissues of patients with cancer treated with courses of cDDP. The Pt in a small skin area was excited by a monochromatic soft x-ray beam (14.6 KeV) and the spectral L lines emitted from the tissue were detected. A limit of detection below 1 mug/g wet weight was reached. The pharmacokinetics of Pt in blood was investigated in parallel with the use of high-sensitivity, flameless atomic absorption spectrometry (AAS).Results. Follow-up of Pt concentrations in the skin of patients with cancer by DXS before cDDP treatment, during treatment, and up to 4 months after its completion, showed prolonged Pt deposition that corresponded to the net cumulative doses of the drug. Pt clearance from the skin fitted a monoexponential curve with a half-life of about 30 days. In comparison, the pharmacokinetics of total Pt in plasma showed a much faster, biexponential clearance with half-lives of 41 minutes and 5.2 days, respectively.Conclusions. The amount of nonspecific Pt deposition in the tissues was found to depend on the total doses administered, the time interval between the courses, and the slow rate of clearance. Noninvasive measurements of tissue Pt levels may serve as a major tool in the evaluation of the induction of late cDDP complications.
Noninvasive analysis of heavy elements in external tissues by diagnostic‐x‐ray spectrometry (DXS) is presented. Pt can be detected accurately with sensitivity below 1 μg/g wet weight of tissue. In the present paper the possibility to monitor Pt accumulation and clearance in the external tissues of cancer patients treated with cisplatin [Cis‐diamminedichloro‐platinum (II)‐cDDP] chemotherapy is reported. The DXS method is based on x‐ray fluorescence analysis. Heavy elements in the small skin area of interest are analyzed by their excitation with a monochromatic soft x‐ray beam of 14.6 KeV. Spectral L lines of heavy metals such as Pt are detected with minimum interference by other elements in the tissues. Skin Pt levels up to about 6 μg/g were observed following several courses of cDDP treatment. The Pt seemed to be homogeneously distributed in different skin areas with similar levels in the dermis and epidermis. The rate of clearance of Pt from the skin (50% in about 30 days) was slower by three orders of magnitude than its clearance from plasma. Further studies may use DXS to establish the accurate kinetics of Pt deposition and clearance in tissues of cDDP treated patients, as well as the exact relation between tissue Pt levels and the development of the drug related late complications.
Diagnostic X‐ray spectrometry (DXS), based on X‐ray fluorescence, was used to quantitate directly the multiple elemental composition of washed, intact human platelets (n = 16), with the following results: K = 3.08 ± 1.00 mg/g, Ca = 1.18 ± 0.29 mg/g, Zn = 35 ± 9 μg/g. These values show that washed platelets contain significant pools of K, Ca, and Zn, the latter some 30–60‐fold higher than plasma levels. Dialysis of whole platelets against cation exchange resin (Chelex‐100) did not extract Ca(II) and Zn(II) sequestered within whole cells. To identify the subcellular locale of the elements, platelet lysate was subjected to 30–70% sucrose gradient ultracentrifugation and subcellular enriched fractions were obtained. Fractions were analyzed by DXS (for elements), electron microscopy (for dense granules), and subcellular markers fibrinogen and von Willebrand factor. In contrast to Ca and K, which accumulate in the dense granules and the cytoplasm, respectively, Zn appears to be distributed in the α‐granules (40%) and the cytoplasm (60%). The subcellular distribution of Zn(II) is discussed within the context of the sensitivity of platelet response to the availability of Zn(II) and the platelet release reactions following stimulation. © 1993 Wiley‐Liss, Inc.
Zinc(II) accumulated by platelets has profound effects on platelet activity. This study is focused on the distribution of Zn(II) between human platelet subcellular compartments. After incubation with 86Rb+ and platelet lysis, the organelles were separated by sucrose density gradient centrifugation. Fibrinogen served as a marker for alpha-granules. 86Rb+ and factor XIII served as markers for the cytoplasmic fractions. Zn(II) was found to be distributed between the cytoplasm and the alpha-granules, with variations between different individual units. The total platelet Zn concentration and its relative subcellular distribution were dependent on its extracellular level. Incubation of platelets with 100 microM Zn(II) resulted in a twofold increase of its level in the cytoplasm and by one order of magnitude in the alpha-granules. In addition to the anticipated factor XIII activity in the cytoplasmic pool fraction, we found thrombin-inducible factor XIII activity within the alpha-granules. Immunoblotting confirmed the presence of both the a and b subunits of plasma factor XIII (a2b2 form) in the alpha-granules. As fibrinogen is not synthesized in the platelet, we propose that by virtue of their mutual binding, fibrinogen, Zn(II) and plasma factor XIII-a2b2 are simultaneously taken up into the alpha-granules by endocytosis, presumably through the vehicle of the GPIIb/IIIa fibrinogen receptor. A rationale for co-packaging these components within the alpha-granules is that Zn(II) inhibits factor XIII activity and thereby prevents the premature cross-linking of the concentrated fibrinogen prior to platelet activation and secretion. By contrast, cytoplasmic Zn(II) may increase platelet responsiveness to agonists due to its interaction with cytoplasmic modulators of platelet activity.
Radiation induced dermal injury was measured by the gain in the physical strength of healing wounds in mouse skin. A sigmoid dose response for the inhibition of wound healing 14 days after surgery was found for single doses of X rays. The sparing of dermal damage from fractionation of the X-ray dose was quantified in terms of the alpha/beta ratio in the linear-quadratic (LQ) model, at a wide range of doses per fraction reaching as low as about 1 Gy. The fit and the appropriateness of the LQ model for the skin wound healing assay was examined with the use of the Fe-plot in which inverse total dose is plotted versus dose per fraction for wound strength isoeffects. The alpha/beta ratio of the skin was about 2.5 Gy (95% confidence of less than ±1 Gy) and was appropriate over a dose range of 1 Gy to about 8 Gy. The low alpha/beta value is typical for a late responding tissue. This assay, therefore, has the advantage of measuring and forecasting late radiation responses of the dermis within a short time after irradiation.