Heparin protects basic and acidic FGF from inactivation - PubMed (original) (raw)
Heparin protects basic and acidic FGF from inactivation
D Gospodarowicz et al. J Cell Physiol. 1986 Sep.
Abstract
The ability of heparin or that of hexuronyl hexosaminoglycan sulfate (HHS-4) to protect basic or acidic fibroblast growth factor (FGF) from acid or heat inactivation has been analyzed. Both freshly prepared basic and acidic FGF stimulate the growth of baby hamster kidney (BHK-21) cells exposed to medium supplemented with transferrin and insulin. Freshly prepared basic FGF was 10 fold more potent than acidic FGF. The addition of heparin to the medium decreased the potency of basic FGF while it potentiated that of acidic FGF. Upon storage of FGF at -80 degrees C, a decline in potency of both basic and acidic FGF was observed. Heparin, when added to the medium, potentiated their activities, which became similar to that of freshly prepared basic FGF. In order to test whether heparin could protect basic or acidic FGF from inactivation, both mitogens were exposed to acid conditions (1% trifluoroacetic acid, pH 1.08, 2 h) or heat (65 degrees C, 5 min) which inactivate basic or acidic FGF. When exposed to such treatment in the presence of heparin or HHS-4, basic and acidic FGF retained their potency. The effect of heparin and HHS-4 on the bioactivity of basic and acidic FGF is truly of a protective nature, since they had no effect when added after inactivation of the mitogens. Potentiation of the bioactivity of the protected mitogens or of the inactivated one could only be observed when cells were exposed to high heparin or HHS-4 concentrations. This indicates that heparin and HHS-4, in addition to protecting FGF from inactivation, also acts at another locus, as yet unidentified.
Similar articles
- Effect of fibroblast growth factor and lipoproteins on the proliferation of endothelial cells derived from bovine adrenal cortex, brain cortex, and corpus luteum capillaries.
Gospodarowicz D, Massoglia S, Cheng J, Fujii DK. Gospodarowicz D, et al. J Cell Physiol. 1986 Apr;127(1):121-36. doi: 10.1002/jcp.1041270116. J Cell Physiol. 1986. PMID: 3958059 - Effect of lipoproteins and growth factors on the proliferation of BHK-21 cells in serum free culture.
Neufeld G, Massoglia S, Gospodarowicz D. Neufeld G, et al. Regul Pept. 1986 Feb;13(3-4):293-305. doi: 10.1016/0167-0115(86)90047-9. Regul Pept. 1986. PMID: 3486435 - Acidic and basic fibroblast growth factors prolong the in-vitro survival of murine peritoneal macrophages.
Hackshaw KV, Trout AM. Hackshaw KV, et al. Res Commun Mol Pathol Pharmacol. 1996 Jun;92(3):373-8. Res Commun Mol Pathol Pharmacol. 1996. PMID: 8827835 - L-iduronate-rich glycosaminoglycans inhibit growth of normal fibroblasts independently of serum or added growth factors.
Westergren-Thorsson G, Persson S, Isaksson A, Onnervik PO, Malmström A, Fransson LA. Westergren-Thorsson G, et al. Exp Cell Res. 1993 May;206(1):93-9. doi: 10.1006/excr.1993.1124. Exp Cell Res. 1993. PMID: 7683278 - Effect of heparin on the angiogenic potency of basic and acidic fibroblast growth factors in the rabbit cornea assay.
Herbert JM, Laplace MC, Maffrand JP. Herbert JM, et al. Int J Tissue React. 1988;10(3):133-9. Int J Tissue React. 1988. PMID: 2465281
Cited by
- Isolation-protocol, characterization, and in-vitro performance of equine umbilical vein endothelial cells.
Lessiak U, Melchert M, Walter I, Kummer S, Nell B, Tschulenk W, Pratscher B. Lessiak U, et al. Front Vet Sci. 2024 Oct 1;11:1421946. doi: 10.3389/fvets.2024.1421946. eCollection 2024. Front Vet Sci. 2024. PMID: 39411390 Free PMC article. - Bacterial-Nanocellulose-Based Biointerfaces and Biomimetic Constructs for Blood-Contacting Medical Applications.
Roberts EL, Abdollahi S, Oustadi F, Stephens ED, Badv M. Roberts EL, et al. ACS Mater Au. 2023 Jun 27;3(5):418-441. doi: 10.1021/acsmaterialsau.3c00021. eCollection 2023 Sep 13. ACS Mater Au. 2023. PMID: 38089096 Free PMC article. Review. - Fibroblast growth factor 2.
Nickle A, Ko S, Merrill AE. Nickle A, et al. Differentiation. 2024 Sep-Oct;139:100733. doi: 10.1016/j.diff.2023.10.001. Epub 2023 Oct 12. Differentiation. 2024. PMID: 37858405 Review. - Tuning the intentional corona of cerium oxide nanoparticles to promote angiogenesis via fibroblast growth factor 2 signalling.
Fu L, Li R, Whitelock JM, Lord MS. Fu L, et al. Regen Biomater. 2022 Oct 20;9:rbac081. doi: 10.1093/rb/rbac081. eCollection 2022. Regen Biomater. 2022. PMID: 36338174 Free PMC article. - Quaternized Chitosan/Heparin Polyelectrolyte Multilayer Films for Protein Delivery.
Urbaniak T, García-Briones GS, Zhigunov A, Hladysh S, Adrian E, Lobaz V, Krunclová T, Janoušková O, Pop-Georgievski O, Kubies D. Urbaniak T, et al. Biomacromolecules. 2022 Nov 14;23(11):4734-4748. doi: 10.1021/acs.biomac.2c00926. Epub 2022 Oct 26. Biomacromolecules. 2022. PMID: 36289568 Free PMC article.
Publication types
MeSH terms
Substances
LinkOut - more resources
Full Text Sources
Other Literature Sources
Medical