Structure-based engineering of Tor complexes reveals that two types of yeast TORC1 produce distinct phenotypes

Author:

Kamada Yoshiaki12ORCID,Umeda Chiharu3,Mukai Yukio3,Ohtsuka Hokuto4,Otsubo Yoko1,Yamashita Akira1,Kosugi Takahiro5678ORCID

Affiliation:

1. , National Institute for Basic Biology (NIBB), National Institutes of Natural Sciences (NINS) 1 Interdisciplinary Research Unit , Okazaki, Aichi, 444-8585 , Japan

2. SOKENDAI (The Graduate University for Advanced Studies) 2 Basic Biology Program , , Hayama, Kanagawa, 240-0193 , Japan

3. Nagahama Institute of Bio-Science and Technology 3 Department of Frontier Bioscience , , Nagahama, Shiga, 526-0829 , Japan

4. Graduate School of Pharmaceutical Sciences, Nagoya University 4 Laboratory of Molecular Microbiology , , Nagoya, Aichi, 464-8601 , Japan

5. Institute for Molecular Science (IMS), National Institutes of Natural Sciences (NINS) 5 Research Center of Integrative Molecular Systems (CIMoS) , , Okazaki, Aichi, 444-8585 , Japan

6. , National Institutes of Natural Sciences (NINS) 6 Exploratory Research Center on Life and Living Systems (ExCELLS) , Okazaki, Aichi, 444-8585 , Japan

7. SOKENDAI (The Graduate University for Advanced Studies) 7 Molecular Science Program , , Hayama, Kanagawa, 240-0193 , Japan

8. Precursory Research for Embryonic Science and Technology (PRESTO), Japan Science and Technology Agency 8 , Kawaguchi, Saitama, 332-0012 , Japan

Abstract

ABSTRACT Certain proteins assemble into diverse complex states, each having a distinct and unique function in the cell. Target of rapamycin (Tor) complex 1 (TORC1) plays a central role in signalling pathways that allow cells to respond to the environment, including nutritional status signalling. TORC1 is widely recognised for its association with various diseases. The budding yeast Saccharomyces cerevisiae has two types of TORC1, Tor1-containing TORC1 and Tor2-containing TORC1, which comprise different constituent proteins but are considered to have the same function. Here, we computationally modelled the relevant complex structures and then, based on the structures, rationally engineered a Tor2 mutant that could form Tor complex 2 (TORC2) but not TORC1, resulting in a redesign of the complex states. Functional analysis of the Tor2 mutant revealed that the two types of TORC1 induce different phenotypes, with changes observed in rapamycin, caffeine and pH dependencies of cell growth, as well as in replicative and chronological lifespan. These findings uncovered by a general approach with huge potential – model structure-based engineering – are expected to provide further insights into various fields such as molecular evolution and lifespan.

Funder

National Institutes of Natural Sciences

Japan Science and Technology Agency

Precursory Research for Embryonic Science and Technology

Ministry of Education, Culture, Sports, Science and Technology

Institute for Molecular Science

Publisher

The Company of Biologists

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