1)西华师范大学生命科学学院,西南野生动植物资源保护教育部重点实验室,南充 637009;2)西华师范大学环境科学与工程学院,南充 637009
四川大学-南充市人民政府校企合作专项(2025CDNC15),四川省科技厅应用基础面上项目(2022NSFSC0107),四川省科技厅农业科技成果转化资金项目(2022NZZJ0003)和四川省转移支付科技成果转移转化示范项目(22ZYZFSF0009,23ZHSF0082)资助。
1)Key Laboratory of Southwest China Wildlife Resources Conservation, the Ministry of Education, College of Life Science, China West Normal University, Nanchong 637009, China;2)College of Environmental Science and Engineering, China West Normal University, Nanchong 637009, China
This work was supported by grants from Sichuan University and Nanchong Municipal People’s Government University Industry Cooperation Special Fund (2025CDNC15), Applied Basic General Project of Sichuan Provincial Department of Science and Technology (2022NSFSC0107), Agricultural Scientific and Technological Achievement Transformation Funding Project of Sichuan Provincial Department of Science and Technology (2022NZZJ0003), and Sichuan Provincial Transfer Payment for Scientific and Technological Achievement Transfer and Transformation Demonstration Project (22ZYZFSF0009, 23ZHSF0082).
目的 SPBC1604.04基因编码一种未被正式命名的粟酒裂殖酵母(Schizosaccharomyces pombe)线粒体载体蛋白,预测该蛋白质负责焦磷酸硫胺素在线粒体的转运,但其对有丝分裂的细胞动力学影响尚不明确。方法 本研究以SPBC1604.04基因缺失的粟酒裂殖酵母为研究对象,构建SPBC1604.04基因缺失(SPBC1604.04Δ)菌株的线粒体、微管、肌动蛋白、肌球蛋白、核膜和染色体荧光蛋白标记,并在常温(25℃)和高温胁迫(37℃)下,使用激光共聚焦显微镜进行活细胞成像,探究SPBC1604.04基因缺失对有丝分裂的细胞动力学影响。结果 25℃下,SPBC1604.04Δ菌株线粒体含量出现异常,线粒体荧光强度减弱,同时,肌动蛋白-肌球蛋白环的收缩时间延长。37℃高温胁迫下,SPBC1604.04Δ菌株线粒体含量恢复,荧光强度增强,肌动蛋白-肌球蛋白环的收缩时间也恢复正常。结论 本研究揭示了SPBC1604.04基因缺失导致裂殖酵母的线粒体含量异常,且线粒体载体蛋白SPBC1604.04能够参与调控有丝分裂中肌动蛋白-肌球蛋白环的收缩过程,但不参与有丝分裂中纺锤体和染色体分离的调控,为深入解析SPBC1604.04基因在线粒体与有丝分裂调控之间的联系提供了关键实验依据。
Objective Mitochondria are not only the central organelles responsible for cellular energy metabolism but also play essential roles in regulating cell cycle progression and cytoskeletal dynamics. In recent years, accumulating evidence has demonstrated that mitochondrial homeostasis is closely associated with mitotic progression and cytokinesis. Schizosaccharomyces pombe serves as a classical and well-established model organism. Because its cell cycle regulatory mechanisms are highly conserved throughout evolution, its genetic background is clearly defined, and experimental manipulation is efficient and convenient, it has been extensively applied in studies of cell growth, division, and reproductive mechanisms. The SPBC1604.04 gene encodes a previously uncharacterized mitochondrial carrier protein in Schizosaccharomyces pombe. This gene is located on chromosome II and spans 1 018 base pairs in length. It encodes a protein consisting of 238 amino acids with a predicted molecular mass of approximately 31.03 ku. Bioinformatic analysis predicts that this protein is responsible for the transport of thiamine pyrophosphate (TPP) into mitochondria. However, the effects of SPBC1604.04 gene deletion on mitotic cell dynamics under different temperature conditions have not been fully elucidated.Methods The SPBC1604.04 deletion strain of Schizosaccharomyces pombe was used as the experimental model. Fluorescent protein markers were constructed in the deletion background to label mitochondria, microtubules, actin, myosin, the nuclear envelope, and chromosomes. Live-cell imaging was performed using a TCS-SP8 laser scanning confocal microscope under normal temperature conditions (25℃) and heat stress conditions (37℃). Time-lapse microscopy was applied to dynamically monitor mitochondrial morphology and distribution, spindle assembly and elongation, chromosome segregation, as well as the formation and constriction of the actomyosin ring during cytokinesis. ImageJ software was used for quantitative measurements, including microtubule length during mitosis, spindle length at different mitotic stages, mitochondrial fluorescence intensity as an indicator of mitochondrial content, actomyosin ring length, nuclear envelope area, and chromosome segregation timing. Statistical analyses were conducted to compare phenotypic differences between the wild-type and SPBC1604.04 deletion strains at both temperature conditions. Through these analyses, we systematically investigated the impact of SPBC1604.04 deletion on mitotic cell dynamics in fission yeast under both normal physiological conditions and temperature stress.Results At 25℃, compared with wild-type cells, the SPBC1604.04Δ strain exhibited a pronounced tendency toward mitochondrial fragmentation, accompanied by abnormal mitochondrial content and a significant reduction in mitochondrial fluorescence intensity. These observations suggest impaired mitochondrial homeostasis under normal growth conditions. In addition, the constriction time of actomyosin ring during cytokinesis was markedly prolonged, indicating that deletion of SPBC1604.04 affects the dynamics of the contractile machinery. However, no obvious defects were observed in spindle assembly, spindle elongation, or chromosome segregation. Under heat stress at 37℃, mitochondrial morphology in the SPBC1604.04Δ strain showed a tendency to recover toward a continuous tubular network structure. Mitochondrial content was restored, fluorescence intensity increased, and the constriction time of the actomyosin ring returned to levels comparable to those of wild-type cells. These results indicate that the mitotic defects observed at normal temperature are partially or fully alleviated under heat stress conditions.Conclusion This study demonstrates that deletion of the SPBC1604.04 gene leads to abnormal mitochondrial content in Schizosaccharomyces pombe. The mitochondrial carrier protein SPBC1604.04 participates in regulating actomyosin ring constriction during mitosis but does not appear to be directly involved in the regulation of spindle dynamics or chromosome segregation. Our findings provide key experimental evidence for understanding the functional link between the SPBC1604.04 gene, mitochondrial homeostasis, and mitotic regulation.
徐嘉妮,何佳怡,郑琅琳,何书榕,马帅,丁祥,侯怡铃.SPBC1604.04基因缺失对粟酒裂殖酵母有丝分裂的细胞动力学影响[J].生物化学与生物物理进展,2026,53(5):1471-1484 XU Jia-Ni, HE Jia-Yi, ZHENG Lang-Lin, HE Shu-Rong, MA Shuai, DING Xiang, HOU Yi-Ling. Effects of SPBC1604.04 Gene Deletion on Mitotic Cell Dynamics in Schizosaccharomyces pombe[J]. Progress in Biochemistry and Biophysics,2026,53(5):1471-1484
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