Department of Physics and Astronomy, Vrije Universiteit, Amsterdam, The Netherlands.
LaserLaB Amsterdam, Vrije Universiteit, Amsterdam, The Netherlands.
Q Rev Biophys. 2021 Sep 17;54:e10. doi: 10.1017/S0033583521000081.
Condensation and faithful separation of the genome are crucial for the cellular life cycle. During chromosome segregation, mechanical forces generated by the mitotic spindle pull apart the sister chromatids. The mechanical nature of this process has motivated a lot of research interest into the mechanical properties of mitotic chromosomes. Although their fundamental mechanical characteristics are known, it still remains unclear how these characteristics emerge from the structure of the mitotic chromosome. Recent advances in genomics, computational and super-resolution microscopy techniques have greatly promoted our understanding of the chromosomal structure and have motivated us to review the mechanical characteristics of chromosomes in light of the current structural insights. In this review, we will first introduce the current understanding of the chromosomal structure, before reviewing characteristic mechanical properties such as the Young's modulus and the bending modulus of mitotic chromosomes. Then we will address the approaches used to relate mechanical properties to the structure of chromosomes and we will also discuss how mechanical characterization can aid in elucidating their structure. Finally, future challenges, recent developments and emergent questions in this research field will be discussed.
凝聚和忠实分离基因组对于细胞生命周期至关重要。在染色体分离过程中,有丝分裂纺锤体产生的机械力将姐妹染色单体拉开。这一过程的力学性质激发了人们对有丝分裂染色体力学特性的大量研究兴趣。尽管人们已经了解了它们的基本力学特性,但仍然不清楚这些特性是如何从有丝分裂染色体的结构中产生的。基因组学、计算和超分辨率显微镜技术的最新进展极大地促进了我们对染色体结构的理解,并促使我们根据当前的结构见解来重新审视染色体的力学特性。在这篇综述中,我们将首先介绍当前对染色体结构的理解,然后再综述有丝分裂染色体的特征力学特性,如杨氏模量和弯曲模量。接下来,我们将讨论将力学特性与染色体结构联系起来的方法,还将讨论力学特性如何有助于阐明其结构。最后,将讨论该研究领域的未来挑战、最新进展和新兴问题。