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New Drosophila Long-Term Memory Genes Revealed by Assessing Computational Function Prediction Methods

机译:通过评估计算功能预测方法揭示的果蝇新的长期记忆基因。

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摘要

A major bottleneck to our understanding of the genetic and molecular foundation of life lies in the ability to assign function to a gene and, subsequently, a protein. Traditional molecular and genetic experiments can provide the most reliable forms of identification, but are generally low-throughput, making such discovery and assignment a daunting task. The bottleneck has led to an increasing role for computational approaches. The Critical Assessment of Functional Annotation (CAFA) effort seeks to measure the performance of computational methods. In CAFA3, we performed selected screens, including an effort focused on long-term memory. We used homology and previous CAFA predictions to identify 29 key Drosophila genes, which we tested via a long-term memory screen. We identify 11 novel genes that are involved in long-term memory formation and show a high level of connectivity with previously identified learning and memory genes. Our study provides first higher-order behavioral assay and organism screen used for CAFA assessments and revealed previously uncharacterized roles of multiple genes as possible regulators of neuronal plasticity at the boundary of information acquisition and memory formation.
机译:我们对生命的遗传和分子基础的理解的主要瓶颈在于将功能分配给基因以及随后分配蛋白质的能力。传统的分子和基因实验可以提供最可靠的鉴定形式,但通量通常较低,这使得发现和分配任务艰巨。瓶颈导致计算方法的作用越来越大。功能注释的关键评估(CAFA)的工作旨在衡量计算方法的性能。在CAFA3中,我们执行了选定的屏幕,包括专注于长期记忆的工作。我们使用同源性和先前的CAFA预测来识别29个主要的果蝇基因,我们通过长期记忆筛选对其进行了测试。我们确定了11个参与长期记忆形成的新基因,并显示出与先前确定的学习和记忆基因的高度连接。我们的研究提供了用于CAFA评估的首个高级行为分析和生物体筛查,并揭示了多个基因以前未表征的作用,它们可能是信息获取和记忆形成边界上神经元可塑性的调节剂。

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