The University of Tokyo · 신경과학
Akinao Nose 교수의 연구실은 곤충의 신경생물학과 행동을 중심으로, 뇌-신경-근육 시스템의 기능적 회로 형성 메커니즘을 규명하는 데 초점을 맞추고 있습니다. 주로 초파리 둥글이의 기저귀 운동, 신경 회로의 시냅스 연결 및 기능적 조절 원리에 대해 옵토지노믹스, 유전자 조작, 생물학적 영상 기술을 융합해 연구합니다. 특히 운동 패tern 생성, 근육의 이완 조절, 신경 회로의 상호작용 메커니즘을 다루며, 복잡한 행동을 조절하는 신경 회로의 발달과 기능을 해부하고자 합니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
The Ca2+-dependent cell adhesion molecules, termed cadherins, were previously divided into two subclasses, E- and N-types, with different adhesive specificity. In this study, we identified a novel class of cadherin, termed P-cadherin, using a visceral endoderm cell line PSA5-E. This cadherin was a 118,000-D glycoprotein and distinct from E- and N-cadherins in immunological specificity and molecular mass. In accord with these findings, cells with P-cadherin did not cross-adhere with cells with E-
The somatic musculature in the abdominal hemisegments of Drosophila consists of 30 uniquely identifiable muscle fibers. Previous studies have suggested that the muscle diversity originates in a special class of myoblasts, called muscle founders, that are formed by the division of muscle progenitors. However, the mechanisms that locate and specify the muscle progenitors/founders are largely unknown. In this study, we first used a novel marker, rP298-LacZ, to chart the development of muscle progen
Halorhodopsin (NpHR), a light-driven microbial chloride pump, enables silencing of neuronal function with superb temporal and spatial resolution. Here, we generated a transgenic line of Drosophila that drives expression of NpHR under control of the Gal4/UAS system. Then, we used it to dissect the functional properties of neural circuits that regulate larval peristalsis, a continuous wave of muscular contraction from posterior to anterior segments. We first demonstrate the effectiveness of NpHR b
How are functional neural circuits formed during development? Despite recent advances in our understanding of the development of individual neurons, little is known about how complex circuits are assembled to generate specific behaviors. Here, we describe the ways in which Drosophila motor circuits serve as an excellent model system to tackle this problem. We first summarize what has been learned during the past decades on the connectivity and development of component neurons, in particular moto
Rhythmic motor patterns underlying many types of locomotion are thought to be produced by central pattern generators (CPGs). Our knowledge of how CPG networks generate motor patterns in complex nervous systems remains incomplete, despite decades of work in a variety of model organisms. Substrate borne locomotion in Drosophila larvae is driven by waves of muscular contraction that propagate through multiple body segments. We use the motor circuitry underlying crawling in larval Drosophila as a mo
Typical patterned movements in animals are achieved through combinations of contraction and delayed relaxation of groups of muscles. However, how intersegmentally coordinated patterns of muscular relaxation are regulated by the neural circuits remains poorly understood. Here, we identify Canon, a class of higher-order premotor interneurons, that regulates muscular relaxation during backward locomotion of Drosophila larvae. Canon neurons are cholinergic interneurons present in each abdominal neur