可诱导的染色体重组揭示了非线性多基因剂量效应在驱动体酵母特征的非线性多基因剂量效应
Hongyi Yin1,2,3,4, Zhou Guo1,2,3, Chu Zhou1,2,3
1State Key Laboratory of Synthetic Biology, Tianjin University, Tianjin, China.
Nature communications
|December 4, 2025
概括
积体,或异常的染色体数量,可以推动进化. 研究人员发现了非线性基因相互作用和剂量效应,这解释了状积分如何影响酵母菌的特征,如耐热性和耐药性.
科学领域:
- 遗传学 是一个遗传学.
- 进化生物学 进化生物学
- 分子生物学分子生物学
背景情况:
- 无积体症会导致基因剂量改变,影响繁殖和进化.
- 由于基因剂量效应,阐明形后果的遗传基础是复杂的.
研究的目的:
- 建立一个框架来识别无体表型的遗传驱动因素.
- 调查酵母菌进化中的非线性多基因剂量效应.
主要方法:
- 利用通过LoxP介导进化 (SCRaMbLE) 的合成染色体重新排列和修改,用于合成形酵母的功能丧失查.
- 在euploid酵母中使用功能增益测试来验证发现.
- 开发了足够和必要的框架来分析基因剂量效应.
主要成果:
- 发现了五个基因的新兴效应,改变了三糖的生物合成,并赋予了体酵母的耐热性.
- 鉴定了YCL039W和YCL037C之间剂量依赖的对抗性表皮症的基因,通过Ras途径调节拉巴胺素耐药性.
- 观察到其他无体特征的充足性-必要性不对称性.
结论:
- 提供了非线性多基因相互作用的直接证据,塑造了无体表型.
- 进步了对细胞适应性进化的遗传基础的理解,这种进化是由体积积分驱动的.
更多相关视频
07:55A Deep-sequencing-assisted, Spontaneous Suppressor Screen in the Fission Yeast Schizosaccharomyces pombe
Published on: March 7, 2019
8.5K
09:40Quantitation and Analysis of the Formation of HO-Endonuclease Stimulated Chromosomal Translocations by Single-Strand Annealing in Saccharomyces cerevisiae
Published on: September 23, 2011
15.1K
相关概念视频
Position-effect Variegation
7.0K
In 1928, a German botanist Emil Heitz observed the moss nuclei with a DNA binding dye. He observed that while some chromatin regions decondense and spread out in the interphase nucleus, others do not. He termed them euchromatin and heterochromatin, respectively. He proposed that the heterochromatin regions reflect a functionally inactive state of the genome. It was later confirmed that heterochromatin is transcriptionally repressed, and euchromatin is transcriptionally active chromatin.
7.0K
Yeast Signaling
17.1K
Yeasts are single-celled organisms, but unlike bacteria, they are eukaryotes (cells with a nucleus). Cell signaling in yeast is similar to signaling in other eukaryotic cells. A ligand, such as a protein or a small molecule released from a yeast cell, attaches to a receptor on the cell surface. The binding stimulates second-messenger kinases to activate or inactivate transcription factors that further regulate gene expression. Many of the yeast intracellular signaling cascades have similar...
17.1K
Nondisjunction
81.7K
During meiosis, chromosomes occasionally separate improperly. This occurs due to failure of homologous chromosome separation during meiosis I or failed sister chromatid separation during meiosis II. In some species, notably plants, nondisjunction can result in an organism with an entire additional set of chromosomes, which is called polyploidy. In humans, nondisjunction can occur during male or female gametogenesis and the resulting gametes possess one too many or one too few chromosomes.
81.7K
Nondisjunction
4.8K
Nondisjunction is the failure of homologous chromosomes or sister chromatids to separate correctly and move to the opposite poles of the cells. This produces daughter cells with abnormal chromosome numbers. Nondisjunction is common during anaphase I or anaphase II of meiosis. Mutations in synaptonemal complex proteins that attach homologous chromosomes increase the chances of nondisjunction in anaphase I of meiosis I. In contrast, mutations in topoisomerases and condensins that hold...
4.8K
Dosage Compensation
7.0K
In animals, gender is determined by the number and type of sex chromosome. For example, human females have two X chromosomes, and males have one X and one Y chromosome, whereas C.elegans with one X chromosome is a male, and the one with two X chromosomes is a hermaphrodite.
In addition to sexual development, the X chromosome has genes involved in autosomal functions such as brain development and the immune system. Therefore, males and females with distinct numbers of X chromosomes will...
In addition to sexual development, the X chromosome has genes involved in autosomal functions such as brain development and the immune system. Therefore, males and females with distinct numbers of X chromosomes will...
7.0K
Gene Conversion
10.5K
Other than maintaining genome stability via DNA repair, homologous recombination plays an important role in diversifying the genome. In fact, the recombination of sequences forms the molecular basis of genomic evolution. Random and non-random permutations of genomic sequences create a library of new amalgamated sequences. These newly formed genomes can determine the fitness and survival of cells. In bacteria, homologous and non-homologous types of recombination lead to the evolution of new...
10.5K
