Department of Biochemistry, The Graduate Center of the City University of New York, New York, NY 10016.
Advanced Science Research Center, City University of New York, New York, NY 10804.
Proc Natl Acad Sci U S A. 2022 Sep 13;119(37):e2202240119. doi: 10.1073/pnas.2202240119. Epub 2022 Sep 6.
Liquid-liquid phase separation of tropoelastin has long been considered to be an important early step in the complex process of elastin fiber assembly in the body and has inspired the development of elastin-like peptides with a wide range of industrial and biomedical applications. Despite decades of study, the material state of the condensed liquid phase of elastin and its subsequent maturation remain poorly understood. Here, using a model minielastin that mimics the alternating domain structure of full-length tropoelastin, we examine the elastin liquid phase. We combine differential interference contrast (DIC), fluorescence, and scanning electron microscopy with particle-tracking microrheology to resolve the material transition occurring within elastin liquids over time in the absence of exogenous cross-linking. We find that this transition is accompanied by an intermediate stage marked by the coexistence of insoluble solid and dynamic liquid phases giving rise to significant spatial heterogeneities in material properties. We further demonstrate that varying the length of the terminal hydrophobic domains of minielastins can tune the maturation process. This work not only resolves an important step in the hierarchical assembly process of elastogenesis but further contributes mechanistic insight into the diverse repertoire of protein condensate maturation pathways with emerging importance across biology.
天然弹性蛋白的液-液相分离一直被认为是体内弹性纤维组装这一复杂过程的早期重要步骤,并启发了具有广泛工业和生物医学应用的弹性蛋白样肽的发展。尽管经过了几十年的研究,但弹性蛋白凝聚液相的物质状态及其随后的成熟过程仍知之甚少。在这里,我们使用模拟全长天然弹性蛋白的交替结构域的模型微弹性蛋白来研究弹性蛋白液相。我们结合微分干涉对比(DIC)、荧光和扫描电子显微镜与粒子跟踪微流变学来解析在没有外源性交联的情况下弹性蛋白液体随时间发生的材料转变。我们发现,这种转变伴随着一个中间阶段,其特征是不溶性固体和动态液相共存,导致材料性质的显著空间异质性。我们进一步证明,改变微弹性蛋白的末端疏水区的长度可以调节成熟过程。这项工作不仅解决了弹性蛋白发生过程中分层组装的重要步骤,而且进一步深入了解了在生物学中具有重要意义的各种蛋白质凝聚物成熟途径的机制。