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首页> 外文期刊>Archives of Biochemistry and Biophysics >Small-subunit cysteine-65 substitutions can suppress or induce alterations in the large-subunit catalytic efficiency and holoenzyme thermal stability of ribulose-1,5-bisphosphate carboxylase/oxygenase
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Small-subunit cysteine-65 substitutions can suppress or induce alterations in the large-subunit catalytic efficiency and holoenzyme thermal stability of ribulose-1,5-bisphosphate carboxylase/oxygenase

机译:小亚基半胱氨酸65替代可以抑制或诱导1,5-双磷酸核糖羧化酶/加氧酶的大亚基催化效率和全酶热稳定性的改变

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摘要

In the green alga Chlamydomonas reinhardtii, an L290F substitution in the chloroplast-encoded large-subunit of ribulose-1,5-bisphosphate carboxylase/oxygenase (Rubisco) causes decreases in carboxylation V-max, CO2/O-2 specificity, and thermal stability. Analysis of photosynthesis-competent revertants selected at the 35 degrees C restrictive temperature identified a rare C65S suppressor substitution in the nuclear-encoded small subunit. C65S enhances catalysis and CO2/O-2 specificity in the absence of other wild-type small subunits, and restores thermal stability in vivo. C65S, C65A, and C65P mutant strains were created. C65S and C65A enzymes have normal catalysis, but C65P Rubisco, which contains land-plant Pro, has decreases in carboxylation V-max/K-m and CO2/O-2 specificity. In contrast to other small-subunit substitutions that affect specificity, Cys-65 contacts the large subunit, and the C65P substitution does not cause a decrease in holoenzyme thermal stability in vivo or in vitro. Further analysis of the C65P protein may identify structural alterations that influence catalysis separate from those that affect stability. (c) 2006 Elsevier Inc. All rights reserved.
机译:在绿藻衣藻中,核糖-1,5-双磷酸二羧化酶/加氧酶(Rubisco)的叶绿体编码大亚基中的L290F取代导致羧化V-max,CO2 / O-2特异性和热稳定性降低。分析在35摄氏度的限制性温度下进行的具有光合作用能力的还原剂,在核编码的小亚基中发现了罕见的C65S抑制剂替代物。在没有其他野生型小亚基的情况下,C65S增强了催化作用和CO2 / O-2特异性,并在体内恢复了热稳定性。创建了C65S,C65A和C65P突变株。 C65S和C65A酶具有正常的催化作用,但是含有陆地植物Pro的C65P Rubisco的羧化V-max / K-m和CO2 / O-2特异性降低。与影响特异性的其他小亚基取代不同,Cys-65与大亚基接触,C65P取代不会引起体内或体外全酶热稳定性的降低。对C65P蛋白的进一步分析可以确定影响催化的结构改变和影响稳定性的结构改变。 (c)2006 Elsevier Inc.保留所有权利。

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