DOE Great Lakes Bioenergy Research Center, University of Wisconsin-Madison, Madison, Wisconsin, USA.
Pharmaceutical Sciences Division, School of Pharmacy, University of Wisconsin-Madison, Madison, Wisconsin, USA.
mBio. 2023 Dec 19;14(6):e0148723. doi: 10.1128/mbio.01487-23. Epub 2023 Oct 31.
The inherent complexity of biological systems is a major barrier to our understanding of cellular physiology. Bacteria with markedly fewer genes than their close relatives, or reduced genome bacteria, are promising biological models with less complexity. Reduced genome bacteria can also have superior properties for industrial use, provided the reduction does not overly restrict strain robustness. Naturally reduced genome bacteria, such as the alphaproteobacterium , have fewer genes but remain environmentally robust. In this study, we show that is a simplified genetic model for Alphaproteobacteria, a class with important impacts on the environment, human health, and industry. We also identify genes that are only required in the absence of atmospheric oxygen, uncovering players that maintain and utilize the cellular energy state. Our findings have broad implications for the genetics of Alphaproteobacteria and industrial use of to create biofuels and bioproducts.
生物系统的固有复杂性是我们理解细胞生理学的主要障碍。与近亲相比,基因数量明显较少或基因组减少的细菌是具有较低复杂性的有前途的生物模型。减少基因组的细菌也可以具有更好的工业用途特性,只要减少不会过度限制菌株的稳健性。自然减少基因组的细菌,如α变形菌,基因较少,但仍然具有环境稳健性。在这项研究中,我们表明 是一个简化的α变形菌遗传模型,该类群对环境、人类健康和工业具有重要影响。我们还确定了仅在没有大气氧的情况下才需要的基因,揭示了维持和利用细胞能量状态的参与者。我们的发现对α变形菌的遗传学和利用 生产生物燃料和生物制品具有广泛的影响。