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Biology subjects

Matsuura, K.

Publications and source records attributed to Matsuura, K..

5 recordsLinked to original sources

Synaptotagmin 2 is ectopically overexpressed in excitatory presynapses of a widely used CaMK2a-Cre mouse line

The CaMKII-Cre mouse line, one of the earliest established Cre driver lines, has resulted in over 800 papers to date. Here, we demonstrate that the second most widely used CaMKII-Cre line, Tg(Camk2a-cre)2Gsc (or CamiCre), shows ectopic overexpression of synaptotagmin 2, the most efficient Ca2+ sensor for fast synchronous neurotransmitter release, in excitatory presynapses of Cre+ brains. Moreover, RNA-seq analysis showed aberrant expression in Cre+ hippocampus, including upregulation of immediate early genes, such as Arc and Fos, and genes presumably derived from bacterial artificial chromosome transgene, such as Slc6a7. Most importantly, CamiCre+ mice showed functional phenotypes, such as hyperactivity and enhanced associative learning, suggesting neural activities are affected. These unexpected results suggest difficulties in interpreting results from studies using the CamiCre line and raise awareness of potential pitfalls in the use of Cre driver lines in general.

genetics

Genomic imprinting drives eusociality

The origin of eusociality, altruistically foregoing personal reproduction to help others, has been a long-standing paradox ever since Darwin. Most eusocial insects and rodents likely evolved from subsocial precursors, in which older offspring "helpers" contribute to the development of younger siblings without a permanent sterile caste. The driving mechanism for the transition from subsociality (with helpers) to eusociality (with lifelong sterile workers) remains an enigma because individuals in subsocial groups are subject to direct natural selection rather than kin selection. Our genomic imprinting theory demonstrates that natural selection generates eusociality in subsocial groups when parental reproductive capacity is linked to a delay in the sexual development of offspring due to sex-antagonistic action of transgenerational epigenetic marks. Focusing on termites, our theory provides the missing evolutionary link to explain the evolution of eusociality from their subsocial wood-feeding cockroach ancestors, and provides a novel framework for understanding the origin of eusociality.

evolutionary biology

SIPA1L1/SPAR1 is a non-PSD protein involved in GPCR signaling

SIPA1L1 (also known as SPAR1) has been proposed to regulate synaptic functions that are important in maintaining normal neuronal activities, such as regulating spine growth and synaptic scaling, as a component of the postsynaptic density (PSD)-95/N-methyl-D-aspartate receptor (NMDA-R)-complex. However, contrary to this view, our super-resolution and immunoelectron microscopic analyses demonstrate that SIPA1L1 is mainly localized to general submembranous and cytoplasmic regions in neurons, but scarcely to PSD. Our screening for native interactors of SIPA1L1 identified spinophilin and neurabin-1, regulators of G protein-coupled receptor (GPCR) signaling, but rejected PSD-95/NMDA-R-complex components. Furthermore, Sipa1l1-/- mice showed normal spine size distribution and NMDA-R-dependent synaptic plasticity. Nevertheless, Sipa1l1-/- mice showed aberrant responses to 2-adrenergic receptor (a spinophilin target) or adenosine A1 receptor (a neurabin-1 target) agonist stimulation and striking behavioral anomalies, such as hyperactivity, enhanced anxiety, learning impairments, social interaction deficits, and enhanced epileptic seizure susceptibility. Our findings revealed unexpected properties of SIPA1L1, suggesting a possible association of SIPA1L1 deficiency with neuropsychiatric disorders related to dysregulated GPCR signaling, such as epilepsy, attention deficit hyperactivity disorder (ADHD), autism, or fragile X syndrome.

neuroscience

Meiosis-specific ZFP541 repressor complex promotes meiotic prophase exit during spermatogenesis

During spermatogenesis, meiosis is accompanied by robust alteration in gene expression and chromatin status. However, it remained elusive how meiotic transcriptional program is established to ensure completion of meiotic prophase. Here, we identified a novel protein complex consisting of germ-cell-specific zinc-finger protein ZFP541 and its interactor KCTD19 as the key transcriptional regulator for meiotic prophase exit. Our genetic study showed that ZFP541 and KCTD19 are co-expressed from pachytene onward and play an essential role in the completion of meiotic prophase program in the testis. Furthermore, our ChIP-seq and transcriptome analyses revealed that ZFP541 binds to and suppresses a broad range of genes whose function is associated with biological processes of transcriptional regulation and covalent chromatin modification. The present study demonstrated that germ-cell specific ZFP541-KCTD19 containing complex promotes meiotic prophase exit in males, and triggers reconstruction of the transcription network and chromatin organization leading to post-meiotic development.

developmental biology

Distinct transcriptional programs of SOX2 in different types of small cell lung cancers

SOX2 is an oncogene in human small cell lung cancer (SCLC), an aggressive neuroendocrine (NE) tumor. However, the roles of SOX2 in SCLC remain unclear, and strategies to selectively target SOX2 in SCLC cells have not yet been established. We herein demonstrated that SOX2 is involved in NE differentiation and tumorigenesis in cooperation with ASCL1, a lineage-specific transcriptional factor, in the classical subtype of SCLC cell lines. ASCL1 recruits SOX2, which promotes INSM1 expression. Precursor SCLC lesions were established in Trp53 (-/-); CCSPrtTA; tetOCre; floxedRb1; floxedHes1 mice, and the NE neoplasms induced were positive for Ascl1, Sox2, and Insm1. In contrast to the ASCL1-SOX2 signaling axis to control the SCLC phenotype in classical subtype SCLC, SOX2 targeted distinct genes, such as those related to the Hippo pathway, in ASCL1-negative, variant subtype SCLC. The present results support the importance of the ASCL1-SOX2 axis as a main subtype of SCLC, and suggest the therapeutic potential of targeting the ASCL1-SOX2 signaling axis and the clinical utility of SOX2 as a biological marker in the classical subtype of SCLC.

cancer biology