首页> 外文期刊>American Journal of Applied Mathematics >Differential Incremental Equilibrium Geometry - Spatial Folding of Protein Particles, Genome Expression and Bidirectional Semiconservative Replication of Ring Chromosomes
【24h】

Differential Incremental Equilibrium Geometry - Spatial Folding of Protein Particles, Genome Expression and Bidirectional Semiconservative Replication of Ring Chromosomes

机译:微分增量平衡几何-蛋白质颗粒的空间折叠,基因组表达和环状染色体的双向半保守复制

获取原文
获取外文期刊封面目录资料

摘要

The research direction of this paper is to study the interdisciplinary subjects of life science, mathematics and computer science at the molecular level from the life science Molecular Cell Biology. On the basis of mathematical primitive innovation "Differential Incremental Balanced Geometry", the cell modification of normal chromosome mitosis was established at the molecular level, and the normal cell tissue spatial morphology with initial boundary was established. DNA is used to unravel double helix and separate double strands to solve the protein skeleton structure of bi-directional Semi-Reserved replication of cyclic chromosomes in life sciences at the molecular level. Therefore, it establishes and reveals the duplication fork and bidirectional duplication of molecular cell biology model, the internal structure and regularity of cyclic chromosomes bound by cyclic DNA double helix and many proteins. New mathematics is integrated into the micro-activities of cell modification in life sciences. The topological geometric image of the solitary wavelet with supersymmetric structure is constructed, which reflects the correct abstract model of cell modification and provides dynamic structure for DNA gene sequencing, etc. It also provides a mature mathematical basis for reliable predictability of gene editing.
机译:本文的研究方向是从生命科学分子细胞生物学的分子水平研究生命科学,数学和计算机科学的交叉学科。在数学原始创新“差分增量平衡几何”的基础上,在分子水平上建立了正常染色体有丝分裂的细胞修饰,并建立了具有初始边界的正常细胞组织空间形态。 DNA用于解开双螺旋并分离双链,以解决分子生物学中生命科学中环状染色体双向半保留复制的蛋白质骨架结构。因此,它建立并揭示了分子细胞生物学模型的复制叉和双向复制,以及由环状DNA双螺旋和许多蛋白质结合的环状染色体的内部结构和规则性。在生命科学中,新数学被整合到细胞修饰的微观活动中。构建了具有超对称结构的孤立小波的拓扑几何图像,该图像反映了正确的细胞修饰抽象模型,并为DNA基因测序等提供了动态结构。这也为基因编辑的可靠可预测性提供了成熟的数学基础。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号