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AI-Driven Robotics Laboratory Identifies Pharmacological TNIK Inhibition as a Potent Senomorphic Agent
Qiuqiong Tang1,2,3, Deyong Xiao1,2,3, Alexander Veviorskiy1,4,3
1Insilico Medicine US Inc, Cambridge, MA 02138, USA.
Abstract:
Assessing impact on the hallmarks of aging has emerged as a novel method for prioritizing dual-purpose longevity therapeutic targets and developing drugs simultaneously targeting aging and disease. Cellular senescence, a central hallmark of aging, progressively induces cellular growth arrest and accelerates the production of a pro-inflammatory senescence-associated secretory phenotype (SASP). TGF-β signaling is situated at the center of multiple senescence-associated and aging-associated signaling pathways, and its inhibition may be favorable for aging-related disorders. A recently developed Traf2- and Nck-interacting kinase (TNIK) inhibitor, INS018_055, was identified as a potent, novel anti-fibrotic agent affecting multiple hallmarks of aging across fibrotic diseases. Thus, we hypothesized that TNIK is a potential senescence modulator and INS018_055 could attenuate senescent cell accumulation to treat specific age-related pathological processes. Using a fully automated robotics laboratory designed for automated, highly parallel, and iterative phenotypic and multi-omic analyses, we determined that pharmacological or siRNA-mediated TNIK inhibition decreased cellular senescence in multiple experimental senescence models. INS018_055 mechanistically demonstrated senomorphic activity through its reduction of SASP. Furthermore, transcriptomics analysis revealed that INS018_055 treatment reduced aging signatures and extracellular matrix fibronectin through TGF-β signaling. These findings reveal TNIK's previously unappreciated role in cellular senescence and INS018_055's senomorphic potential in mitigating processes well-established as driving organismal aging. Thus, TNIK inhibition as a novel senomorphic strategy may inform future therapeutic approaches for diverse aging-related diseases.
Insights
Targeting Traf2- and Nck-interacting kinase (TNIK) with INS018_055 reduces cellular senescence and its associated secretory phenotype (SASP). This senomorphic strategy may offer new therapies for aging-related diseases by modulating key aging hallmarks.
Area of Science:
- Gerontology and Cellular Biology
- Drug Discovery and Development
- Molecular Signaling Pathways
Background:
- Cellular senescence is a hallmark of aging, driving inflammation via the senescence-associated secretory phenotype (SASP).
- Transforming growth factor-beta (TGF-β) signaling is central to aging and senescence pathways.
- Traf2- and Nck-interacting kinase (TNIK) inhibition is a potential therapeutic avenue for aging and fibrotic diseases.
Purpose of the Study:
- To investigate the role of TNIK in cellular senescence.
- To evaluate the senomorphic potential of the TNIK inhibitor INS018_055.
- To explore INS018_055's mechanism of action in aging and fibrotic processes.
Main Methods:
- Utilized automated robotics for high-throughput phenotypic and multi-omic analyses.
- Employed pharmacological and siRNA-mediated TNIK inhibition in senescence models.
- Conducted transcriptomics to analyze molecular changes following INS018_055 treatment.
Main Results:
- TNIK inhibition, via INS018_055 or siRNA, significantly reduced cellular senescence.
- INS018_055 demonstrated senomorphic activity by decreasing SASP.
- Transcriptomics revealed INS018_055 reduced aging signatures and fibronectin via TGF-β signaling.
Conclusions:
- TNIK plays a significant role in cellular senescence.
- INS018_055 exhibits senomorphic potential, mitigating aging hallmarks.
- TNIK inhibition represents a novel senomorphic strategy for aging-related diseases.
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