Lin Athena, Summers Diana, Reiff Sarah B, Tipton Aaron R, Tang Sindy K, Marshall Wallace F
Biochemistry and Biophysics, University of California San Francisco.
Oklahoma Medical Research Foundation.
Matters Sel. 2020;6(4). Epub 2020 Apr 6.
The giant unicellular ciliate Stentor coeruleus can be cut into pieces and each piece will regenerate into a healthy, full-sized individual. The molecular mechanism for how Stentor regenerates is a complete mystery, however, the process of regeneration shows striking similarities to the process of cell division. On a morphological level, the process of creating a second mouth in division or a new oral apparatus in regeneration have the same steps and occur in the same order. On the transcriptional level, genes encoding elements of the cell division and cell cycle regulatory machinery, including Aurora kinases, are differentially expressed during regeneration. This suggests that there may be some common regulatory mechanisms involved in both regeneration and cell division. If the cell cycle machinery really does play a role in regeneration, then inhibition of proteins that regulate the timing of cell division may also affect the timing of regeneration in Stentor. Here we show that two well-characterized Aurora kinase A+B inhibitors that affect the timing of regeneration. ZM447439 slows down regeneration by at least one hour. PF03814735 completely suppresses regeneration until the drug is removed. Here we provide the first direct experimental evidence that Stentor may harness the cell division machinery to regulate the sequential process of regeneration.
巨大的单细胞纤毛虫天蓝喇叭虫可以被切成碎片,每一片都能再生成为一个健康、完整大小的个体。然而,喇叭虫再生的分子机制完全是个谜,不过,再生过程与细胞分裂过程有着惊人的相似之处。在形态学层面,在分裂过程中形成第二个口或在再生过程中形成新的口器的过程具有相同的步骤且按相同顺序发生。在转录层面,编码细胞分裂和细胞周期调控机制元件的基因,包括极光激酶,在再生过程中差异表达。这表明在再生和细胞分裂中可能存在一些共同的调控机制。如果细胞周期机制真的在再生中发挥作用,那么抑制调节细胞分裂时间的蛋白质也可能会影响喇叭虫的再生时间。在这里我们表明,两种特征明确的极光激酶A+B抑制剂会影响再生时间。ZM447439使再生至少减慢一小时。PF03814735完全抑制再生,直到药物被去除。在这里我们提供了第一个直接的实验证据,表明喇叭虫可能利用细胞分裂机制来调节再生的连续过程。