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Park, D.-h.

Publications and source records attributed to Park, D.-h..

4 recordsLinked to original sources

Chemical activation of mitophagy via the N-degron pathway alleviates mitochondrial neuropathies

Pharmacological activation of mitophagy offers a promising strategy to eliminate dysfunctional mitochondria. We previously identified the autophagy receptor p62/SQSTM1 as an N-recognin whose activity is enhanced by Arg/N-degrons. Here, we show that Arg/N-degrons generated by ATE1-encoded R-transferase regulate p62-mediated mitophagy by promoting its recruitment to damaged mitochondria. Structural modification of Arg/N-degrons yielded ATB1071, a 443.5-Da orally bioavailable compound that activates p62 and induces stress-selective mitophagy through both Parkin-independent pathways involving NIPSNAP1 and NIPSNAP2, and a Parkin-dependent pathway involving the substrate EBP1/PA2G4. In Ndufs4-/- mice, a Leigh syndrome (LS) model, ATB1071 induced mitophagy in the brain and exerted therapeutic benefits by reducing neuroinflammation, improving muscle strength and neuromuscular coordination, and extending lifespan. In cerebral ischemia-reperfusion (IR) model mice, ATB1071 reduced infarct volume and neuronal death, and ameliorated multiple behavioral deficits through EBP1-dependent mitophagy. Pharmacokinetic (PK) and toxicological analyses support ATB1071 as a preclinical candidate for mitochondria-associated neurological injury.

cell biology↗

Proteolytic cleavage of G3BP1 by calpain 1 couples NMDAR activation to mTOR-dependent local translation

Ribonucleoprotein (RNP) granules are dynamic, membraneless organelles that sequester translationally repressed mRNAs and RNA-binding proteins, playing a pivotal role in the regulation of localized protein synthesis. While disassembly of RNP granules is essential for reactivating translation, the mechanisms by which neuronal activity regulates this process remain poorly understood. In this study, we show that stimulation of N-methyl-D-aspartate (NMDA) receptor (NMDAR) triggers calcium influx, leading to activation of calpain 1 and subsequent proteolytic cleavage of Ras-GTPase-activating protein binding protein 1 (G3BP1), a core component of stress granules. This cleavage results in the disassembly of G3BP1 granules in the neurites and promotes mTOR-dependent local translation, thereby linking synaptic activity to spatially restricted protein synthesis. Finally, we demonstrate that the NMDAR-calpain 1-G3BP1-mTOR signaling axis contributes to axonal regeneration, establishing proteolytic remodeling of RNP granules as a key mechanism of activity-dependent neural repair, with potential implications for therapeutic intervention in brain injury.

neuroscience↗

Targeted degradation of pathologic tau aggregates via AUTOTAC ameliorates tauopathy

The pathogenesis of tauopathies including Alzheimers disease (AD) and progressive supranuclear palsy (PSP) involves the misfolding and aggregation of tau. Here, we employed AUTOTAC to induce the lysosomal degradation of intraneuronal tau aggregates. ATB2005A is a 734-Da chimera that simultaneously binds {beta}-sheet-rich tau aggregates and the autophagic receptor p62/SQSTM1, leading to autophagosomal sequestration and lysosomal co-degradation. In mouse models of tauopathies, orally administered ATB2005A lowered intraneuronal tau aggregates and exerted the therapeutic efficacy in neuroinflammation as well as cognition, behavior, and muscle movements. A Phase 2 clinical trial (U34401-4/2023/14) with companion dogs carrying canine cognitive dysfunction (CCD) demonstrated the efficacy of ATB2005A, as a veterinary medicine, to reverse the disease progression. ATB2005A is under Phase 1 clinical trial with human participants in Korea (202300697). These results validate AUTOTAC as a versatile platform for developing therapeutics to eradicate toxic protein aggregates in a wide range of proteinopathies.

neuroscience↗

Targeted degradation of pathogenic TDP-43 proteins in amyotrophic lateral sclerosis using the AUTOTAC platform

Amyotrophic lateral sclerosis (ALS) is a fatal neurodegenerative disease characterized by the progressive loss of motor neurons and the cytoplasmic aggregation of misfolded proteins in the spinal cord, including TAR DNA-binding protein-43 (TDP-43). More than 97% of ALS cases exhibit pathological TDP-43 inclusions, yet therapeutic strategies that can selectively eliminate these aggregates remain yet to be developed. Here, we employed the AUTOTAC (Autophagy-Targeting Chimera) to degrade TDP-43 aggregates via macroautophagy mediated by the N-recognin p62/SQSTM1 of the N-degron pathway. The AUTOTAC degraders ATC141 and ATC142 were designed to bind and link the oligomeric species of misfolded TDP-43 to p62, which induces the targeting of TDP-43 cargoes to phagophores for lysosomal co-degradation, while sparing monomeric TDP-43. ATC142 induced the degradation of pathological TDP-43 A315T species and its cleaved variant, TDP-25, with DC50 values of 1.25-9.6 nM. In ALS model mice expressing TDP-43 A315T in the spinal cord, oral administration of 10 mg/kg ATC141 with 24 doses reduced TDP-43 aggregates as well as GFAP+ astrocytes and Iba1+ microglia. ATC141 also exerted disease-modifying efficacy to reverse the disease progression in neuromuscular coordination and cognitive function. This oral drug is under Phase 1 clinical trials in South Korea with 76 healthy volunteers aiming to treat ALS, Alzheimers diseases (AD), and progressive supranuclear palsy (PSP). We suggest that AUTOTAC provides a novel strategy to treat a broad range of neurodegenerative diseases. TeaserAUTOTAC degraders induce lysosomal degradation of pathogenic TDP-43 aggregates in a mouse model of amyotrophic lateral sclerosis.

neuroscience↗