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Molecular hypotheses to explain the shared pathways and underlying pathobiological causes in catatonia and in
1Department of Psychiatry and Mental Health, University of Cape Town, Neurogenetic Psychiatric Outpatients Clinic, Groote Schuur Hospital, Main Road, Observatory 7935, Cape Town, South Africa; Life Vincent Pallotti Hospital, Suite 116, Alexandra Road, Pinelands 7405, Cape Town, South Africa.
Abstract:
The pathobiological causes, the shared cellular and molecular pathways in catatonia and in catatonic presentation in neuropsychiatric disorders are yet to be determined. The hypotheses in this paper have been deduced from the latest scientific research findings and clinical observations of patients with genetic disorders, behavioral phenotypes and other family members suffering mental disorders. The first hypothesis postulates that catatonia and the heterogeneity of catatonic signs and symptoms involve nucleolar dysfunction arising from abnormalities of the brain-specific, non-coding micro-RNA, SNORD115 genes (either duplications or deletions) which result in pathobiological dysfunction of various combinations in the downstream pathways (possibly along with other genes in these shared pathways). SNORD115 controls five genes CRHR1, PBRM1, TAF1, DPM2, and RALGPS1 as well as the alternative splicing of serotonin 2C receptor. SNORD115 abnormalities with varying downstream multigene involvement would account for catatonia across the life span within some subtypes of autism spectrum disorders, schizophrenia, bipolar and major depressive disorder, psychosis, genetic disorders, and in immune disorders such as anti-N-methyl-d-aspartate receptor (NMDAR) antibody encephalitis as well as the susceptibility to the neuroleptic malignant syndrome (NMS) if environmentally triggered. Furthermore, SNORD115 genes may underlie a genetic vulnerability when environmental triggers result in excess serotonin producing the serotonin syndrome, a condition similar to NMS in which catatonia may occur. Dysfunction of SNORD115-PBRM1 connecting with SMARCA2 as well as other proven schizophrenia-associated genes might explain why traditionally catatonia has been classified with schizophrenia. SNORD115-TAF1 and SNORD-DPM2 dysfunction introduce possible clues to the parkinsonism and increased creatinine phosphokinase in NMS, while abnormalities of SNORD115-RALGPS1 suggest links to both anti-NMDAR encephalitis and the proven predisposing catatonic SHANK3 gene. The second hypothesis postulates that periodic catatonia (PC) on 15q15 involves abnormalities of vacuolar protein sorting 39 (VPS39), a proven de novo schizophrenic gene in this chromosomal locus and part of the HOPS complex. These will impact the autophagic and endocytic pathways, thereby lowering lysosomal degradation. VPS39 mutations may be considered also to disrupt lysosome-mitochondria tethering and transport of lipids and calcium through membrane contact sites (MCSs). To account for the periodicity in PC it is speculated that the mammalian equivalent of the vacuole and mitochondria patch (vCLAMP) would be altered by VPS39 mutations and subsequently followed by the mammalian equivalent of endoplasmic reticulum mitochondria encounter structure (ERMES) restoring mitochondrial homeostasis. Future precision psychiatry will require accurate pathophysiologically-defined psychiatric diagnoses to accelerate the discovery of specific molecular-targeted medications to improve therapeutic outcomes.
Insights
Catatonia may stem from nucleolar dysfunction linked to SNORD115 gene abnormalities, impacting various neuropsychiatric disorders. Periodic catatonia may involve VPS39 gene mutations affecting cellular pathways and mitochondrial homeostasis.
Area of Science:
- Neuroscience and Genetics
- Psychiatry
- Molecular Biology
Background:
- The precise pathobiological mechanisms and shared molecular pathways underlying catatonia and its presentation in neuropsychiatric disorders remain unclear.
- Existing hypotheses are derived from recent research and clinical observations in patients with genetic disorders, behavioral phenotypes, and mental health conditions.
Purpose of the Study:
- To propose novel hypotheses regarding the genetic and molecular underpinnings of catatonia and its varied presentations.
- To explore the role of specific genes, including SNORD115 and VPS39, in the pathogenesis of catatonia across different disorders.
Main Methods:
- Deduction of hypotheses from current scientific literature and clinical observations.
- Analysis of the proposed roles of the SNORD115 gene in controlling downstream pathways and gene splicing.
- Investigation of the potential involvement of the VPS39 gene in autophagic, endocytic, and lysosome-mitochondria interactions in periodic catatonia.
Main Results:
- Hypothesis 1: Catatonia is linked to nucleolar dysfunction caused by SNORD115 gene abnormalities (duplications/deletions), affecting downstream pathways and contributing to disorders like autism, schizophrenia, bipolar disorder, and NMDAR encephalitis.
- SNORD115 dysfunction may also predispose individuals to serotonin syndrome and neuroleptic malignant syndrome (NMS).
- Hypothesis 2: Periodic catatonia involves VPS39 gene abnormalities, impacting autophagic/endocytic pathways, lysosomal degradation, and lysosome-mitochondria tethering, potentially altering vCLAMP and ERMES.
Conclusions:
- Abnormalities in SNORD115 and VPS39 genes offer potential molecular explanations for catatonia in various neuropsychiatric and genetic disorders.
- These findings highlight the need for precise, pathophysiologically defined diagnoses to guide the development of targeted molecular therapies in psychiatry.
- Understanding these genetic and molecular pathways is crucial for advancing precision psychiatry and improving treatment outcomes.
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