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Purification of hexabrachion (tenascin) from cell culture conditioned medium, and separation from a cell adhesion factor.

作者信息

Aukhil I, Slemp C C, Lightner V A, Nishimura K, Briscoe G, Erickson H P

机构信息

Department of Periodontics, University of North Carolina School of Dentistry, Chapel Hill 27514.

出版信息

Matrix. 1990 May;10(2):98-111. doi: 10.1016/s0934-8832(11)80176-9.

DOI:10.1016/s0934-8832(11)80176-9
PMID:1695709
Abstract

We describe a protocol for purifying hexabrachion from conditioned medium of cell cultures, using gel filtration chromatography on Sephacryl 500, followed by anion-exchange chromatography on a Mono Q column, followed optionally by a second gel filtration or zone sedimentation on glycerol gradients. The protocol has several advantages over previous procedures based on affinity chromatography on monoclonal antibodies. Perhaps foremost, the protein is never exposed to the denaturing solvents that are required for elution from the antibody column. The Mono Q column also separated hexabrachion from a prominent cell adhesion activity that eluted with the hexabrachion on the first gel filtration, and co-sedimented with hexabrachions on glycerol gradients. The cell adhesion fractions showed several bands between 190 and 400 kDa. A single band at 220 kDa stained prominently with a polyclonal antibody against mouse EHS laminin, and a band at 190 kDa stained with a monoclonal antibody against s-laminin. The purification protocol gave hexabrachion at high concentration and with no detectable contamination by fibronectin or laminin. The highest yield of hexabrachion (1-4 mg from 400 ml of conditioned medium) was from human glioblastoma cell cultures, but the same procedure allowed us to purify and characterize the rat hexabrachion. Protein purified from primary cultures of rat embryo fibroblasts showed approximately equal amounts of three subunit sizes: 280, 230, and 220 kDa. These different subunits, presumably derived from alternative RNA splicing, appeared to be segregated into large and small hexabrachions, which could be separated on glycerol gradients.

摘要

相似文献

1
Purification of hexabrachion (tenascin) from cell culture conditioned medium, and separation from a cell adhesion factor.
Matrix. 1990 May;10(2):98-111. doi: 10.1016/s0934-8832(11)80176-9.
2
Biochemical and structural studies of tenascin/hexabrachion proteins.腱生蛋白/六臂蛋白的生化与结构研究
J Cell Biochem. 1989 Oct;41(2):71-90. doi: 10.1002/jcb.240410204.
3
A simple procedure for tenascin purification.一种用于腱生蛋白纯化的简单方法。
Eur J Biochem. 1992 Apr 15;205(2):545-9. doi: 10.1111/j.1432-1033.1992.tb16811.x.
4
Binding of hexabrachion (tenascin) to the extracellular matrix and substratum and its effect on cell adhesion.六臂体(腱生蛋白)与细胞外基质及基底的结合及其对细胞黏附的影响。
J Cell Sci. 1990 Feb;95 ( Pt 2):263-77. doi: 10.1242/jcs.95.2.263.
5
Rapid intracellular assembly of tenascin hexabrachions suggests a novel cotranslational process.
J Cell Sci. 1995 Apr;108 ( Pt 4):1761-9. doi: 10.1242/jcs.108.4.1761.
6
Purification and partial characterization of Xenopus laevis tenascin from the XTC cell line.从XTC细胞系中纯化非洲爪蟾肌腱蛋白并进行部分特性分析。
FEBS Lett. 1991 Feb 25;279(2):346-50. doi: 10.1016/0014-5793(91)80184-5.
7
Isolation and characterization of human fibroblast tenascin. An extracellular matrix glycoprotein of interest for developmental studies.人成纤维细胞肌腱蛋白的分离与鉴定。一种对发育研究有意义的细胞外基质糖蛋白。
Int J Dev Biol. 1990 Jun;34(2):309-17.
8
Binding of hexabrachions to heparin and DNA.
J Biol Chem. 1989 Aug 5;264(22):13145-9.
9
Hexabrachion proteins in embryonic chicken tissues and human tumors.胚胎鸡组织和人类肿瘤中的六臂体蛋白
J Cell Biol. 1987 Sep;105(3):1387-94. doi: 10.1083/jcb.105.3.1387.
10
Isolation of chick tenascin variants and fragments. A C-terminal heparin-binding fragment produced by cleavage of the extra domain from the largest subunit splicing variant.鸡腱生蛋白变体和片段的分离。通过从最大亚基剪接变体中切割额外结构域产生的C端肝素结合片段。
Eur J Biochem. 1991 Jul 15;199(2):379-88. doi: 10.1111/j.1432-1033.1991.tb16134.x.

引用本文的文献

1
Tenascin-C expression in renal biopsies from patients with tubulointerstitial nephritis and its relation to disease activity and prognosis.肾小管间质性肾炎患者肾活检中肌腱蛋白-C的表达及其与疾病活动和预后的关系。
Int J Clin Exp Pathol. 2020 Jul 1;13(7):1842-1852. eCollection 2020.
2
Tenascin-C Prevents Articular Cartilage Degeneration in Murine Osteoarthritis Models.腱生蛋白-C可预防小鼠骨关节炎模型中的关节软骨退变。
Cartilage. 2018 Jan;9(1):80-88. doi: 10.1177/1947603516681134. Epub 2016 Dec 4.
3
Tenascin-C and carcinoma cell invasion in oral and urinary bladder cancer.
腱生蛋白-C与口腔癌和膀胱癌中的癌细胞侵袭
Cell Adh Migr. 2015;9(1-2):105-11. doi: 10.1080/19336918.2015.1005463.
4
Role of tenascins in the ECM of gliomas.腱糖蛋白在神经胶质瘤细胞外基质中的作用。
Cell Adh Migr. 2015;9(1-2):131-40. doi: 10.1080/19336918.2014.1000071.
5
Involvement of large tenascin-C splice variants in breast cancer progression.大Tenascin-C剪接变体在乳腺癌进展中的作用。
Am J Pathol. 2003 Jun;162(6):1857-67. doi: 10.1016/S0002-9440(10)64320-9.
6
Tenascin-C suppresses Rho activation.肌腱蛋白-C抑制Rho激活。
J Cell Biol. 2000 Aug 21;150(4):913-20. doi: 10.1083/jcb.150.4.913.
7
Tenascin-C contains domains that independently regulate neurite outgrowth and neurite guidance.肌腱蛋白-C包含独立调节神经突生长和神经突导向的结构域。
J Neurosci. 1999 Oct 1;19(19):8443-53. doi: 10.1523/JNEUROSCI.19-19-08443.1999.
8
Utilization of a soluble integrin-alkaline phosphatase chimera to characterize integrin alpha 8 beta 1 receptor interactions with tenascin: murine alpha 8 beta 1 binds to the RGD site in tenascin-C fragments, but not to native tenascin-C.利用可溶性整合素-碱性磷酸酶嵌合体来表征整合素α8β1受体与腱生蛋白的相互作用:小鼠α8β1与腱生蛋白-C片段中的RGD位点结合,但不与天然腱生蛋白-C结合。
Biochemistry. 1998 Apr 21;37(16):5464-74. doi: 10.1021/bi9727489.
9
Mitogenesis, cell migration, and loss of focal adhesions induced by tenascin-C interacting with its cell surface receptor, annexin II.腱生蛋白-C与其细胞表面受体膜联蛋白II相互作用所诱导的有丝分裂、细胞迁移及粘着斑丧失。
Mol Biol Cell. 1996 Jun;7(6):883-92. doi: 10.1091/mbc.7.6.883.
10
Cell surface annexin II is a high affinity receptor for the alternatively spliced segment of tenascin-C.细胞表面膜联蛋白II是腱生蛋白-C可变剪接片段的高亲和力受体。
J Cell Biol. 1994 Jul;126(2):539-48. doi: 10.1083/jcb.126.2.539.