Literature DB >> 35130128

A synergized machine learning plus cross-species wet-lab validation approach identifies neuronal mitophagy inducers inhibiting Alzheimer disease.

Ruixue Ai1, Xu-Xu Zhuang2, Alexander Anisimov1, Jia-Hong Lu2, Evandro F Fang1,3.   

Abstract

Failed recognition and clearance of damaged mitochondria contributes to memory loss as well as Aβ and MAPT/Tau pathologies in Alzheimer disease (AD), for which there is an unmet therapeutic need. Restoring mitophagy to eliminate damaged mitochondria could abrogate metabolic dysfunction, neurodegeneration and may subsequently inhibit or slow down cognitive decline in AD models. We have developed a high-throughput machine-learning approach combined with a cross-species screening platform to discover novel mitophagy-inducing compounds from a natural product library and further experimentally validated the potential candidates. Two lead compounds, kaempferol and rhapontigenin, induce neuronal mitophagy and reduce Aβ and MAPT/Tau pathologies in a PINK1-dependent manner in both C. elegans and mouse models of AD. Our combinational approach provides a fast, cost-effective, and highly accurate method for identification of potent mitophagy inducers to maintain brain health.

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Keywords:  Aging; Alzheimer’s disease; autophagy; machine learning; mitophagy

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Year:  2022        PMID: 35130128      PMCID: PMC9037405          DOI: 10.1080/15548627.2022.2031382

Source DB:  PubMed          Journal:  Autophagy        ISSN: 1554-8627            Impact factor:   16.016


  1 in total

1.  Amelioration of Alzheimer's disease pathology by mitophagy inducers identified via machine learning and a cross-species workflow.

Authors:  Chenglong Xie; Xu-Xu Zhuang; Zhangming Niu; Ruixue Ai; Sofie Lautrup; Shuangjia Zheng; Yinghui Jiang; Ruiyu Han; Tanima Sen Gupta; Shuqin Cao; Maria Jose Lagartos-Donate; Cui-Zan Cai; Li-Ming Xie; Domenica Caponio; Wen-Wen Wang; Tomas Schmauck-Medina; Jianying Zhang; He-Ling Wang; Guofeng Lou; Xianglu Xiao; Wenhua Zheng; Konstantinos Palikaras; Guang Yang; Kim A Caldwell; Guy A Caldwell; Han-Ming Shen; Hilde Nilsen; Jia-Hong Lu; Evandro F Fang
Journal:  Nat Biomed Eng       Date:  2022-01-06       Impact factor: 29.234

  1 in total

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