Highly Purified Glucose Isomerase Crystals Under Microgravity Conditions Grow as Fast as Those on the Ground Do

Yoshihisa Suzuki, Ai Ninomiya, S. Fukuyama, T. Shimaoka, Masae Nagai, K. Inaka, S. Yanagiya, T. Sone, Shingo Wachi, Satoshi Kawaguchi, Y. Arai, K. Tsukamoto
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Abstract

Suppression of convection flows (solute transportation) and that of impurity incorporation into crystals seem to be the main reasons why the quality of protein crystals becomes better under microgravity conditions, whereas each precise mechanism has not been completely clarified yet. We tried to clarify the former reason by the in-situ observation of spiral growth hillocks on the {110} faces of highly purified glucose isomerase (GI) crystals under microgravity conditions and on the ground. Lateral growth rates Vlateral of a spiral hillock on the {110} face of a glucose isomerase crystal in situ under microgravity conditions and step velocities Vstep of the same configuration on the ground took similar values as far as the maximum values are compared each other. This similarity indicates there are less influences of the convection flows on the growth rates of protein crystals contrary to conventional expectations.
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高度纯化的葡萄糖异构酶晶体在微重力条件下的生长速度和在地面上一样快
对流流动(溶质运输)的抑制和杂质掺入晶体的抑制似乎是微重力条件下蛋白质晶体质量变得更好的主要原因,而每一个精确的机制尚未完全阐明。我们试图通过在微重力条件下和地面上观察高纯度葡萄糖异构酶(GI)晶体{110}表面的螺旋生长丘来澄清前者的原因。在微重力条件下原位葡萄糖异构酶晶体{110}表面螺旋丘的横向生长速率与地面上相同构型的阶跃速度在比较最大值时,其值相近。这种相似性表明对流流动对蛋白质晶体生长速率的影响较小,这与传统的预期相反。
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