CNRS UPR9073, University Paris VII, Institut de Biologie Physico-chimique, 13 rue Pierre et Marie Curie, 75005 Paris, France.
Biochemistry. 2010 Mar 30;49(12):2636-46. doi: 10.1021/bi902082d.
Spontaneous rearrangements of RNA structures are usually characterized by large activation energies and thus become very slow at low temperatures, yet RNA structure must remain dynamic even in cold-adapted (psychrophilic) organisms. DEAD-box proteins constitute a ubiquitous family of RNA-dependent ATPases that can often unwind short RNA duplexes in vitro (helicase activity), hence the belief that one of their major (though not exclusive) roles in vivo is to assist in RNA rearrangements. Here, we compare two Escherichia coli DEAD-box proteins and their orthologs from the psychrophilic bacteria Pseudoalteromonas haloplanktis and Colwellia psychrerythraea from the point of view of enzymatic properties. One of these proteins (SrmB) is involved in ribosome assembly, whereas the other (RhlE) presumably participates in both mRNA degradation and ribosome assembly; in vitro, RhlE is far more active as a helicase than SrmB. The activation energy associated with the ATPase activity of the psychrophilic SrmB is lower than for its mesophilic counterpart, making it more active at low temperatures. In contrast, in the case of psychrophilic RhlE, it is the RNA unwinding activity, not the ATPase activity, that has a reduced activation energy and is therefore cold-adapted. We argue that these different modes of cold adaptation reflect the likely function of these proteins in vivo: RNA helicase for RhlE and ATP-dependent RNA binding for SrmB. The cold adaptation of helicases like RhlE presumably facilitates RNA metabolism in psychrophilic bacteria.
RNA 结构的自发重排通常具有较大的活化能,因此在低温下变得非常缓慢,但 RNA 结构即使在冷适应(嗜冷)生物中也必须保持动态。DEAD 盒蛋白构成了一种普遍存在的 RNA 依赖性 ATP 酶家族,它们通常可以在体外解旋短的 RNA 双链(解旋酶活性),因此人们认为它们在体内的主要(尽管不是唯一)作用之一是协助 RNA 重排。在这里,我们从酶学特性的角度比较了两种大肠杆菌 DEAD 盒蛋白及其来自嗜冷细菌假交替单胞菌和科尔韦尔氏菌的同源物。其中一种蛋白(SrmB)参与核糖体组装,而另一种蛋白(RhlE)可能参与 mRNA 降解和核糖体组装;在体外,RhlE 作为解旋酶的活性远高于 SrmB。嗜冷 SrmB 的 ATP 酶活性的活化能低于其嗜温对应物,使其在低温下更活跃。相比之下,对于嗜冷的 RhlE,是 RNA 解旋活性,而不是 ATP 酶活性,具有降低的活化能,因此适应寒冷。我们认为这些不同的冷适应模式反映了这些蛋白质在体内的可能功能:RhlE 是 RNA 解旋酶,而 SrmB 是 ATP 依赖性 RNA 结合蛋白。像 RhlE 这样的解旋酶的冷适应可能有助于嗜冷细菌的 RNA 代谢。