Dynamics of two distinct memory interactions during water seeking in <i>Drosophila</i>

W Wang-Pao Lee (Department of Biochemistry, Chang Gung University) M Meng-Hsuan Chiang (Department of Biochemistry, Chang Gung University) Y Yi-Ping Chao (Department of Computer Science and Information Engineering, Chang Gung University) Y Ying-Fong Wang (Graduate Institute of Biomedical Sciences, Chang Gung University) Y Yan-Lin Chen (Graduate Institute of Biomedical Sciences, Chang Gung University) Y Yu-Chun Lin (Graduate Institute of Biomedical Sciences, Chang Gung University) S Shan-Yun Jenq (Department of Biomedical Sciences, Chang Gung University) J Jun-Wei Lu (Department of Biomedical Sciences, Chang Gung University) T Tsai-Feng Fu (Department of Applied Chemistry, National Chi Nan University) J Jia-Yu Liang (Department of Biochemistry, Chang Gung University) K Kai-Cing Yang (Department of Biomedical Sciences, Chang Gung University) L Li-Yun Chang (Department of Biochemistry, Chang Gung University) T Tony Wu (Department of Neurology, New Taipei Municipal TuCheng Hospital, Chang Gung Memorial Hospital) C Chia-Lin Wu (Department of Biochemistry, Chang Gung University)

Abstract

Forming and forgetting memories shape our self-awareness and help us face future challenges. Therefore, understanding how memories are formed and how different memories interact in the brain is important. Previous studies have shown that thirsty flies sense humidity through ionotropic receptors, which help them locate water sources. Here, we showed that thirsty flies can be trained to associate specific odors with humidity to form a humidity memory that lasts for 30 min after association. Humidity memory formation requires the Ir93a and Ir40a ionotropic receptors, which are essential for environmental humidity sensing. Water memory takes precedence, leading to the forgetting of humidity memory by activating a small subset of dopaminergic neurons called protocerebral anterior medial (PAM)-γ4, that project to the restricted region of the mushroom body (MB) γ lobes. Adult-stage-specific silencing of Dop2R dopaminergic receptors in MB γ neurons prolongs humidity memory for 3 h. Live-brain calcium imaging and dopamine sensor studies revealed significantly increased PAM-γ4 neural activity after odor/humidity association, suggesting its role in forgetting the humidity memory. Our results suggest that overlapping neural circuits are responsible for the acquisition of water memory and forgetting humidity memory in thirsty flies.

Article Details

Volume / Issue Vol. 122, Issue 16
Published April 22, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (14)

W

Wang-Pao Lee

Department of Biochemistry, Chang Gung University

M

Meng-Hsuan Chiang

Department of Biochemistry, Chang Gung University

Y

Yi-Ping Chao

Department of Computer Science and Information Engineering, Chang Gung University

Y

Ying-Fong Wang

Graduate Institute of Biomedical Sciences, Chang Gung University

Y

Yan-Lin Chen

Graduate Institute of Biomedical Sciences, Chang Gung University

Y

Yu-Chun Lin

Graduate Institute of Biomedical Sciences, Chang Gung University

S

Shan-Yun Jenq

Department of Biomedical Sciences, Chang Gung University

J

Jun-Wei Lu

Department of Biomedical Sciences, Chang Gung University

T

Tsai-Feng Fu

Department of Applied Chemistry, National Chi Nan University

J

Jia-Yu Liang

Department of Biochemistry, Chang Gung University

K

Kai-Cing Yang

Department of Biomedical Sciences, Chang Gung University

L

Li-Yun Chang

Department of Biochemistry, Chang Gung University

T

Tony Wu

Department of Neurology, New Taipei Municipal TuCheng Hospital, Chang Gung Memorial Hospital

C

Chia-Lin Wu

Department of Biochemistry, Chang Gung University