School of Medical Sciences, University of New South Wales Sydney, Sydney, NSW, 2052, Australia.
Department of Physiology & Biophysics, Boston University School of Medicine, 72 East Concord Street, Boston, MA, 02118, USA.
Sci Rep. 2019 Aug 2;9(1):11262. doi: 10.1038/s41598-019-47592-9.
Tropomyosins (Tpm) determine the functional capacity of actin filaments in an isoform-specific manner. The primary isoform in cancer cells is Tpm3.1 and compounds that target Tpm3.1 show promising results as anti-cancer agents both in vivo and in vitro. We have determined the molecular mechanism of interaction of the lead compound ATM-3507 with Tpm3.1-containing actin filaments. When present during co-polymerization of Tpm3.1 with actin, H-ATM-3507 is incorporated into the filaments and saturates at approximately one molecule per Tpm3.1 dimer and with an apparent binding affinity of approximately 2 µM. In contrast, H-ATM-3507 is poorly incorporated into preformed Tpm3.1/actin co-polymers. CD spectroscopy and thermal melts using Tpm3.1 peptides containing the C-terminus, the N-terminus, and a combination of the two forming the overlap junction at the interface of adjacent Tpm3.1 dimers, show that ATM-3507 shifts the melting temperature of the C-terminus and the overlap junction, but not the N-terminus. Molecular dynamic simulation (MDS) analysis predicts that ATM-3507 integrates into the 4-helix coiled coil overlap junction and in doing so, likely changes the lateral movement of Tpm3.1 across the actin surface resulting in an alteration of filament interactions with actin binding proteins and myosin motors, consistent with the cellular impact of ATM-3507.
原肌球蛋白(Tropomyosins,Tpm)以特定的同工型特异性方式决定肌动蛋白丝的功能能力。癌细胞中的主要同工型是 Tpm3.1,靶向 Tpm3.1 的化合物在体内和体外均显示出作为抗癌剂的有前途的结果。我们已经确定了先导化合物 ATM-3507 与含 Tpm3.1 的肌动蛋白丝相互作用的分子机制。当在 Tpm3.1 与肌动蛋白共聚合时存在时,H-ATM-3507 被掺入到纤维中并在大约一个分子/ Tpm3.1 二聚体饱和,并且具有约 2 μM 的表观结合亲和力。相比之下,H-ATM-3507 不易掺入预先形成的 Tpm3.1/肌动蛋白共聚物中。使用包含 C 末端、N 末端的 Tpm3.1 肽以及在相邻 Tpm3.1 二聚体界面处形成重叠连接的两种肽的 CD 光谱和热融解显示,ATM-3507 会改变 C 末端和重叠连接的熔点,但不会改变 N 末端。分子动力学模拟(MDS)分析预测,ATM-3507 整合到 4 螺旋卷曲螺旋重叠连接中,并且这样做可能会改变 Tpm3.1 在肌动蛋白表面上的侧向运动,从而改变纤维与肌动蛋白结合蛋白和肌球蛋白马达的相互作用,与 ATM-3507 的细胞影响一致。