Ghorbani Sadegh, Shahrokhtash Ali, Gautrot Julien E, Sutherland Duncan S
Interdisciplinary Nanoscience Center, Aarhus University, Gustav Wieds vej 14, Aarhus C, 8000, Denmark.
The Centre for Cellular Signal Patterns (CellPAT), Gustav Wieds vej 14, Aarhus C, 8000, Denmark.
Small Methods. 2022 Jun;6(6):e2200152. doi: 10.1002/smtd.202200152. Epub 2022 Apr 22.
Hemidesmosomes (HDs) are multiprotein complexes that firmly anchor epidermal cells to the basement membrane of skin through the interconnection of the cytoplasmic intermediate filaments with extracellular laminin 332 (Ln332). Considerably less attention has been paid to HDs compared to focal complexes/focal adhesions (FC/FAs) in mechanistic single-cell structures due to the lack of suitable in vitro model systems. Here nanopatterns of Ln332 (100-1000 nm) are created to direct and study the formation of HD in adherent HaCaT cells. It is observed that HaCaT cells at Ln 332 nanopatterns adhere via hemidesmosomes, in stark contrast to cells at homogeneous Ln332 surfaces that adhere via FC/FAs. Clustering of α6 integrin is observed at nanopatterned Ln332 of 300 nm patches and larger. Cells at 500 nm diameter patterns show strong colocalization of α6 integrin with ColXVII or pan-cytokeratin compared to 300 nm/1000 nm indicating a threshold for HD initiation >100 nm but a pattern size selection for maturation of HDs. It is demonstrated that the pattern of Ln332 can determine the cellular selection of adhesion types with a size-dependent initiation and maturation of HDs. The protein nanopatterning approach that is presented provides a new in vitro route to study the role of HDs in cell signaling and function.
半桥粒(HDs)是一种多蛋白复合物,通过细胞质中间丝与细胞外层粘连蛋白332(Ln332)的相互连接,将表皮细胞牢固地锚定在皮肤的基底膜上。由于缺乏合适的体外模型系统,与机械单细胞结构中的粘着斑复合物/粘着斑(FC/FAs)相比,半桥粒受到的关注要少得多。在此,通过创建Ln332(100 - 1000纳米)的纳米图案来指导和研究贴壁生长的HaCaT细胞中半桥粒的形成。观察到,处于Ln 332纳米图案上的HaCaT细胞通过半桥粒粘附,这与在均匀Ln332表面通过粘着斑复合物/粘着斑粘附的细胞形成鲜明对比。在300纳米及更大尺寸的Ln332纳米图案上观察到α6整合素的聚集。与300纳米/1000纳米图案的细胞相比,直径为500纳米图案的细胞显示α6整合素与XVII型胶原或泛细胞角蛋白有更强的共定位,这表明半桥粒起始的阈值>100纳米,但半桥粒成熟存在图案尺寸选择。结果表明,Ln332的图案可以决定细胞对粘附类型的选择,且半桥粒的起始和成熟与尺寸有关。所提出的蛋白质纳米图案化方法为研究半桥粒在细胞信号传导和功能中的作用提供了一条新的体外途径。