Wilson A K, Coulombe P A, Fuchs E
Howard Hughes Medical Institute, Department of Molecular Genetics and Cell Biology, University of Chicago, Illinois 60637.
J Cell Biol. 1992 Oct;119(2):401-14. doi: 10.1083/jcb.119.2.401.
Type I and type II keratins form obligatory heterodimers, which self-assemble into 10-nm intermediate filaments (IFs). Like all IF proteins, they have a central alpha-helical rod domain, flanked by nonhelical head and tail domains. The IF rod is more highly conserved than head and tail, and within the rod, the carboxy R/K L L E G E sequence is more highly conserved than most other regions. Mutagenesis studies have shed some light on the roles of the head, tail, and R/K L L E G E sequence in 10-nm filament structure. However, interpretations have often been complicated in part because many of these studies have focused on transfected cells, where filament structure cannot be evaluated. Of the few in vitro assembly studies thus far conducted, comparison of keratin mutants with other IF mutants have often been difficult, due to the obligatory heteropolymeric nature of keratin IFs. In this report, we describe in vitro filament assembly studies on headless, tailless, headless/tailless, and R/K L L E G E truncated mutants of keratin 5 and its partner keratin 14. Using varying conditions of ionic strength and pH, we examine effects of analogous K5 and K14 mutations on the stability of 10-nm filament structure. Using EM, we examine effects of mutations on the ability of subunits/protofibrils to (a) elongate and (b) laterally associate. Our results demonstrate that (a) tails of K5 and K14 are required for filament stabilization; (b) the head of K5, but not of K14, is required for filament elongation and lateral alignments; and (c) the R/K L L E G E domains are required for lateral alignments, but not for filament elongation.
I型和II型角蛋白形成必需的异源二聚体,这些二聚体自组装成10纳米的中间丝(IFs)。与所有IF蛋白一样,它们有一个中央α螺旋杆状结构域,两侧是无螺旋的头部和尾部结构域。IF杆状结构域比头部和尾部更具保守性,在杆状结构域内,羧基R/K L L E G E序列比大多数其他区域更具保守性。诱变研究对头部、尾部和R/K L L E G E序列在10纳米丝状结构中的作用有所揭示。然而,解释往往很复杂,部分原因是许多这些研究集中在转染细胞上,在那里丝状结构无法评估。在迄今为止进行的少数体外组装研究中,由于角蛋白IFs的必需异聚体性质,角蛋白突变体与其他IF突变体的比较往往很困难。在本报告中,我们描述了对角蛋白5及其伴侣角蛋白14的无头、无尾、无头/无尾和R/K L L E G E截短突变体的体外丝状组装研究。使用不同的离子强度和pH条件,我们研究了类似的K5和K14突变对10纳米丝状结构稳定性的影响。使用电子显微镜,我们研究了突变对亚基/原纤维(a)伸长和(b)横向结合能力的影响。我们的结果表明:(a)K5和K14的尾部是丝状结构稳定所必需的;(b)K5的头部而非K14的头部是丝状结构伸长和横向排列所必需的;(c)R/K L L E G E结构域是横向排列所必需的,但不是丝状结构伸长所必需的。