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Zinter, N.

Publications and source records attributed to Zinter, N..

3 recordsLinked to original sources

Statins and genetic inhibition of the mevalonate pathway activate an ATF3-STMN2 regenerative program

Loss of neuronal regenerative capacity is a common feature of neurodegenerative disease and axonal injury, yet the transcriptional programs governing this state remain poorly defined. Stathmin-2 (STMN2), a tubulin-binding protein essential for axon maintenance and repair, is profoundly depleted following loss of nuclear TDP-43 in neurodegenerative disease. Here, we identify statins as potent inducers of STMN2 expression. Pharmacological and genetic suppression of the mevalonate pathway, and subsequent prevention of protein geranylgeranylation, restored STMN2 levels in TDP-43 deficient cells and promoted neurite growth. STMN2 induction was abrogated when using a statin analogue unable to interact with HMG-CoA reductase, and through co-administration of mevalonate or geranylgeranyl diphosphate substrates. RNA-seq revealed that statins induce a coordinated pro-regenerative transcriptional response, including activation of the AP-1 transcription factor complex gene, ATF3. Loss of ATF3 attenuated STMN2 induction in vitro, and diminished injury-induced Stmn2 upregulation in spinal motor neurons in vivo. These results demonstrate statins as modulators of ATF3 and STMN2 expression and highlight their therapeutic potential in neurodegenerative disease.

neuroscience↗

Compromised striatal structure and function in mouse models of RARB-related disorder

Dominant variants in the retinoic acid receptor beta (RARB) gene cause a complex disorder known as RARB-related disorder (RARB-RD), characterized by multiple congenital anomalies, global developmental delay, and dystonia. RARB-RD variants have been classified as either gain-of-function (GOF) or dominant-negative (DN) based on their cell-based transcriptional responses to retinoids. To investigate the mechanisms underlying this disorder, we generated mouse models carrying either the p.R387C or p.L402P RARB-RD variant, previously categorized as GOF and DN, respectively. Homozygous mice for either RARB-RD variant died perinatally with colonic aganglionosis, while heterozygous mice survived and recapitulated several features of RARB-RD. In addition to microphthalmia, both RarbR387C/+and RarbL402P/+ mice exhibited progressive coordination deficits, increased active-phase locomotor activity, and cognitive impairment in the novel object recognition test. In contrast, mice heterozygous for a null allele of Rarb (Rarb+/-) did not display these abnormalities. In the brain, Rarb is predominantly expressed in the two major populations of projection neurons of the striatum recognizable by the expression of dopamine receptors D1R/Drd1 and D2R/Drd2. Marker analysis revealed a reduction in Drd2-expressing neurons without changes in Drd1-expressing neurons in both RARB-RD models. Furthermore, RARB-RD mice showed partial resistance to the cataleptic effects of haloperidol, a D2R-specific antagonist. These behavioral, cellular, and dopaminergic deficits--though not the cognitive impairments--have previously been observed in Rarb-/- mice. To determine whether the in vitro effects of RARB-RD variants correlate with distinct transcriptional signatures in vivo, we compared the striatal transcriptome of RarbR387C/+, RarbL402P/+, Rarb-/- and Rarb+/-mice with their littermate controls. We found that the heterozygous RARB-RD variants and the homozygous null allele affected a large subset of common genes, with putative direct RARB targets predominantly downregulated. Notably, the transcriptional impact of the RARB-RD variants was more profound than that of the null allele, regardless of zygosity. Additionally, transcriptional changes in RARB-RD mice extensively overlapped with those observed in mouse models of Huntingtons disease, suggesting shared mechanisms affecting neuronal survival in the striatum. We conclude that the p.R387C and p.L402P variants similarly compromise striatal integrity and function, likely through a DN mechanism. Progressive emergence of most neurologic deficits highlights a potential therapeutic window. Our results support the development of strategies aimed at silencing RARB-RD alleles.

neuroscience↗

Compromised retinoic acid receptor beta (RARb) accelerates the onset of motor, cellular and molecular abnormalities in mouse model of Huntington's disease.

The mechanisms underlying detrimental effects of mutant huntingtin on striatal dysfunction in Huntingtons disease (HD) are not well understood. Although retinoic acid receptor beta (RAR{beta}) emerged recently as one of the top regulators of transcriptionally downregulated genes in the striatum of HD patients and mouse models of HD its involvement in disease progression remains elusive. We report that genetically compromised RAR{beta} signaling accelerates onset of motor abnormalities in R6/1 mouse model of HD. Transcriptional profiling revealed that downregulation of RAR{beta} expression in Rar{beta}+/-; R6/1 mice also accelerates transcriptional signature of disease progression by emergence of upregulated cluster of genes related to cell-cycle, stem cell maintenance and telencephalon development with concomitant downregulation of striatal cell-identity genes. The reactivation of proliferative activity demonstrated in the neurogenic niche and development-related transcriptional programs in the striatum prompt an attempt of lineage infidelity in HD striatum which may lead in consequence to disease-driving energy crisis as suggested by concomitant downregulation of transcripts essential for oxidative phosphorylation, a well-accepted correlate of HD physiopathology, and a metabolic change required for maintenance of proliferative activity and differentiation but not compatible with high energetic demand of differentiated and active neurons. HighlightsO_LICompromising RAR{beta} expression in R6/1 mouse model of HD accelerates onset of HD-like motor abnormalities C_LIO_LICompromised RAR{beta} signaling contributes to the progression of disease-related transcriptional changes in R6/1 mice C_LIO_LIRAR{beta} supports cell-identity maintenance in HD mouse model C_LI

neuroscience↗