Wallin M, Billger M, Strömberg T, Strömberg E
Department of Zoophysiology, University of Göteborg, Sweden.
Arch Biochem Biophys. 1993 Nov 15;307(1):200-5. doi: 10.1006/abbi.1993.1579.
Isolated cod (Gadus morhua) brain microtubules were found to have a broad temperature interval for assembly. In contrast to mammalian microtubules they assembled even at as low temperatures as 14 degrees C. Evidence was found that temperature alters the dependency of microtubule-associated proteins (MAPs) for assembly. The assembly was MAPs-dependent at low, but not at higher temperatures. Assembly at +18 degrees C was inhibited by both NaCl and estramustine phosphate. These compounds are well known to inhibit the binding of MAPs to tubulin. At higher temperatures there was no MAPs dependency for assembly, despite that MAPs bound to the microtubules. Cow MAPs had the same effect as cod MAPs, suggesting that despite differences in MAP composition, the effect is not caused by the unusual composition of cod MAPs. The results therefore suggest that these differences in MAPs dependency are due to intrinsic properties of cod tubulin or tubulin-to-tubulin interactions. Small temperature-induced conformational changes of tubulin and a slight enrichment of acetylated and detyrosinated tubulin in microtubules assembled at +30 degrees C as compared to +15 degrees C, were observed. The ability to alter the assembly stimulating effect of MAPs may be important for the cell to regulate microtubule dynamics and stability. In addition, changes in tubulin conformation and composition of tubulin isoforms may reflect adaptations for microtubule assembly at low temperatures.
研究发现,分离出的鳕鱼(Gadus morhua)脑微管具有较宽的组装温度区间。与哺乳动物微管不同,它们甚至在低至14摄氏度的温度下也能组装。有证据表明,温度会改变微管相关蛋白(MAPs)对组装的依赖性。在低温下组装依赖于MAPs,但在较高温度下则不然。在18摄氏度时,NaCl和磷酸雌莫司汀均抑制组装。众所周知,这些化合物会抑制MAPs与微管蛋白的结合。在较高温度下,尽管MAPs与微管结合,但组装并不依赖于MAPs。牛MAPs与鳕鱼MAPs具有相同的作用,这表明尽管MAPs组成存在差异,但这种作用并非由鳕鱼MAPs的特殊组成引起。因此,结果表明,MAPs依赖性的这些差异是由于鳕鱼微管蛋白的内在特性或微管蛋白与微管蛋白之间的相互作用所致。观察到,与15摄氏度相比,在30摄氏度组装的微管中,微管蛋白存在小的温度诱导构象变化,并且乙酰化和去酪氨酸化微管蛋白略有富集。改变MAPs组装刺激作用的能力对于细胞调节微管动力学和稳定性可能很重要。此外,微管蛋白构象和微管蛋白异构体组成的变化可能反映了在低温下对微管组装的适应性。