TY - JOUR
T1 - Schizophrenia and bipolar disorder risk gene AKAP11 sustains cognitive function by regulating TFEB-mediated autophagy
AU - Deng, Zhiqiang
AU - Kan, Yuxuan
AU - Liu, Jia
AU - Ying, Ka Yee
AU - Yang, Yuxiao
AU - Guan, Xinjie
AU - Xu, Xiaogang
AU - Su, Chengfu
AU - Lu, Jing
AU - Lu, Kejia
AU - Chen, Yinchi
AU - Krishnamoorthi, Senthilkumar
AU - Lu, Jiahong
AU - Iyaswamy, Ashok
AU - Cheung, King Ho
AU - Song, Juxian
AU - Yue, Zhenyu
AU - Li, Min
N1 - Funding information:
ML discloses support for the research of this work from the Hong Kong General Research Fund (HKBU12101022), the Hong Kong Health and Medical Research Fund (HMRF09203776 and HMRF21221301), the Collaborative Research Fund (CRF/C2011-21GF), the Shenzhen-Hong Kong-Macau Science and Technology Plan Project Category C (SGCX20250526155035007), and the Research Fund from Hong Kong Baptist University (IRCMS/19-20/H02 and CRMS/23-24/05). ZD discloses support for the research of this work from the Hong Kong General Research Fund (HKBU12104025), the National Natural Science Foundation of China (NSFC32300795), and the Guangdong Natural Science Foundation (2026A1515011990).
PY - 2026/7/16
Y1 - 2026/7/16
N2 - Schizophrenia (SCZ) and bipolar disorder (BD) share cognitive impairments and autophagy disruptions, with haploinsufficiency of AKAP11 (A-kinase anchoring protein 11) emerging as a major genetic risk factor for both disorders, though its functional role remains poorly understood. Here, we demonstrate that acute Akap11 depletion in the mouse hippocampus induces cognitive deficits, accompanied by synaptic dysfunction and autophagy dysregulation, implicating Akap11 deficiency in cognitive impairments via disrupted autophagic processes. Using in vitro models, we show that AKAP11 regulates autophagy initiation and lysosomal activity in various cell types, including neuronal cells. Mechanistically, AKAP11 deficiency results in increased phosphorylation of transcription factor EB (TFEB), impairing its nuclear translocation and downregulating its target genes critical for autophagy and lysosome biogenesis. Further, we identify an interaction between AKAP11 and PPP3CB, a phosphatase responsible for TFEB dephosphorylation, and demonstrate that inhibition of PPP3CB abrogates AKAP11-mediated TFEB dephosphorylation. Importantly, in vivo administration of a TFEB activator reduces the accumulation of autophagy substrates and mitigates cognitive impairments in Akap11-deficient mice, highlighting TFEB activation as a potential therapeutic strategy. Collectively, our findings establish AKAP11 as a key regulator of the autophagy-lysosome pathway and cognitive function, providing novel insights into the pathophysiology of SCZ and BD and suggesting therapeutic potential in targeting TFEB-mediated autophagy.
AB - Schizophrenia (SCZ) and bipolar disorder (BD) share cognitive impairments and autophagy disruptions, with haploinsufficiency of AKAP11 (A-kinase anchoring protein 11) emerging as a major genetic risk factor for both disorders, though its functional role remains poorly understood. Here, we demonstrate that acute Akap11 depletion in the mouse hippocampus induces cognitive deficits, accompanied by synaptic dysfunction and autophagy dysregulation, implicating Akap11 deficiency in cognitive impairments via disrupted autophagic processes. Using in vitro models, we show that AKAP11 regulates autophagy initiation and lysosomal activity in various cell types, including neuronal cells. Mechanistically, AKAP11 deficiency results in increased phosphorylation of transcription factor EB (TFEB), impairing its nuclear translocation and downregulating its target genes critical for autophagy and lysosome biogenesis. Further, we identify an interaction between AKAP11 and PPP3CB, a phosphatase responsible for TFEB dephosphorylation, and demonstrate that inhibition of PPP3CB abrogates AKAP11-mediated TFEB dephosphorylation. Importantly, in vivo administration of a TFEB activator reduces the accumulation of autophagy substrates and mitigates cognitive impairments in Akap11-deficient mice, highlighting TFEB activation as a potential therapeutic strategy. Collectively, our findings establish AKAP11 as a key regulator of the autophagy-lysosome pathway and cognitive function, providing novel insights into the pathophysiology of SCZ and BD and suggesting therapeutic potential in targeting TFEB-mediated autophagy.
UR - https://www.scopus.com/pages/publications/105045053290
U2 - 10.1038/s41418-026-01813-7
DO - 10.1038/s41418-026-01813-7
M3 - Journal article
SN - 1350-9047
JO - Cell Death and Differentiation
JF - Cell Death and Differentiation
ER -