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TIAM2S as a novel regulator for serotonin level enhances brain plasticity and locomotion behavior
Chun-Hsien Chu1, Jia-Shing Chen2, Pei-Chin Chuang3,4
1Institute of Molecular Medicine, College of Medicine, National Cheng Kung University, Tainan, Taiwan.
Abstract:
TIAM2S, the short form of human T-cell lymphoma invasion and metastasis 2, can have oncogenic effects when aberrantly expressed in the liver or lungs. However, it is also abundant in healthy, non-neoplastic brain tissue, in which its primary function is still unknown. Here, we examined the neurobiological and behavioral significance of human TIAM2S using the human brain protein panels, a human NT2/D1-derived neuronal cell line model (NT2/N), and transgenic mice that overexpress human TIAM2S (TIAM2S-TG). Our data reveal that TIAM2S exists primarily in neurons of the restricted brain areas around the limbic system and in well-differentiated NT2/N cells. Functional studies revealed that TIAM2S has no guanine nucleotide exchange factor (GEF) activity and is mainly located in the nucleus. Furthermore, whole-transcriptome and enrichment analysis with total RNA sequencing revealed that TIAM2S-knockdown (TIAM2S-KD) was strongly associated with the cellular processes of the brain structural development and differentiation, serotonin-related signaling, and the diseases markers representing neurobehavioral developmental disorders. Moreover, TIAM2S-KD cells display decreased neurite outgrowth and reduced serotonin levels. Moreover, TIAM2S overexpressing TG mice show increased number and length of serotonergic fibers at early postnatal stage, results in higher serotonin levels at both the serum and brain regions, and higher neuroplasticity and hyperlocomotion in latter adulthood. Taken together, our results illustrate the non-oncogenic functions of human TIAM2S and demonstrate that TIAM2S is a novel regulator of serotonin level, brain neuroplasticity, and locomotion behavior.
Insights
Human TIAM2S, a protein found in the brain, regulates serotonin levels, neuroplasticity, and locomotion. This study reveals its non-oncogenic neurobiological functions, impacting brain development and behavior.
Area of Science:
- Neurobiology
- Molecular Biology
- Behavioral Science
Background:
- TIAM2S (T-cell lymphoma invasion and metastasis 2 short form) is abundant in healthy brain tissue, but its function is unknown.
- While TIAM2S can be oncogenic in liver and lungs, its role in the brain is unexplored.
Purpose of the Study:
- To investigate the neurobiological and behavioral significance of human TIAM2S in the brain.
- To elucidate the non-oncogenic functions of TIAM2S in neuronal development and function.
Main Methods:
- Utilized human brain protein panels, a neuronal cell line (NT2/N), and transgenic mice overexpressing human TIAM2S (TIAM2S-TG).
- Performed functional studies, whole-transcriptome analysis via RNA sequencing on TIAM2S-knockdown cells.
- Assessed neurite outgrowth, serotonin levels, neuroplasticity, and locomotion behavior.
Main Results:
- TIAM2S is localized in specific brain neurons and well-differentiated NT2/N cells, lacking guanine nucleotide exchange factor (GEF) activity.
- TIAM2S knockdown correlated with impaired brain development, differentiation, serotonin signaling, and neurodevelopmental disorder markers.
- TIAM2S knockdown reduced neurite outgrowth and serotonin levels; TIAM2S overexpression in mice increased serotonergic fibers, serotonin levels, neuroplasticity, and locomotion.
Conclusions:
- Human TIAM2S plays a crucial non-oncogenic role in the brain.
- TIAM2S is identified as a novel regulator of serotonin levels, brain neuroplasticity, and locomotion behavior.
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