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Published on: September 21, 2021
Thiadiazolidinone (TDZD) Analogs Inhibit Aggregation-Mediated Pathology in Diverse Neurodegeneration Models, and
Samuel Kakraba1, Srinivas Ayyadevara1,2, Nirjal Mainali1
1Department of Geriatrics, University of Arkansas for Medical Sciences, Little Rock, AR 72205, USA.
Abstract:
Chronic, low-grade inflammation has been implicated in aging and age-dependent conditions, including Alzheimer's disease, cardiomyopathy, and cancer. One of the age-associated processes underlying chronic inflammation is protein aggregation, which is implicated in neuroinflammation and a broad spectrum of neurodegenerative diseases such as Alzheimer's, Huntington's, and Parkinson's diseases. We screened a panel of bioactive thiadiazolidinones (TDZDs) from our in-house library for rescue of protein aggregation in human-cell and C. elegans models of neurodegeneration. Among the tested TDZD analogs, PNR886 and PNR962 were most effective, significantly reducing both the number and intensity of Alzheimer-like tau and amyloid aggregates in human cell-culture models of pathogenic aggregation. A C. elegans strain expressing human Aβ1-42 in muscle, leading to AD-like amyloidopathy, developed fewer and smaller aggregates after PNR886 or PNR962 treatment. Moreover, age-progressive paralysis was reduced 90% by PNR886 and 75% by PNR962, and "healthspan" (the median duration of spontaneous motility) was extended 29% and 62%, respectively. These TDZD analogs also extended wild-type C. elegans lifespan by 15-30% (p < 0.001), placing them among the most effective life-extension drugs. Because the lead drug in this family, TDZD-8, inhibits GSK3β, we used molecular-dynamic tools to assess whether these analogs may also target GSK3β. In silico modeling predicted that PNR886 or PNR962 would bind to the same allosteric pocket of inactive GSK3β as TDZD-8, employing the same pharmacophore but attaching with greater avidity. PNR886 and PNR962 are thus compelling candidate drugs for treatment of tau- and amyloid-associated neurodegenerative diseases such as AD, potentially also reducing all-cause mortality.
Insights
New thiadiazolidinones (TDZDs) show promise in combating protein aggregation linked to neurodegenerative diseases like Alzheimer's. These compounds significantly reduced aggregates and extended lifespan in model organisms, suggesting potential therapeutic benefits.
Area of Science:
- Biochemistry
- Neuroscience
- Gerontology
Background:
- Chronic, low-grade inflammation is linked to aging and age-related diseases, including Alzheimer's disease (AD), cardiomyopathy, and cancer.
- Protein aggregation is an age-associated process contributing to chronic inflammation, neuroinflammation, and neurodegenerative diseases like AD, Huntington's, and Parkinson's disease.
Purpose of the Study:
- To screen bioactive thiadiazolidinones (TDZDs) for their ability to rescue protein aggregation in neurodegeneration models.
- To evaluate the efficacy of promising TDZD analogs, PNR886 and PNR962, in reducing protein aggregates and ameliorating age-dependent decline.
Main Methods:
- Screening of a TDZD library in human cell and *C. elegans* models of neurodegeneration.
- Assessment of tau and amyloid aggregate reduction in cell cultures.
- Evaluation of amyloid aggregation, paralysis, healthspan, and lifespan in a *C. elegans* AD model.
- In silico molecular dynamics to predict GSK3β inhibition.
Main Results:
- PNR886 and PNR962 significantly reduced tau and amyloid aggregates in human cell models.
- *C. elegans* models showed reduced amyloid aggregates, decreased age-progressive paralysis (90% for PNR886, 75% for PNR962), and extended healthspan (29% for PNR886, 62% for PNR962).
- These TDZD analogs extended wild-type *C. elegans* lifespan by 15-30% and molecular modeling suggested potent GSK3β inhibition.
Conclusions:
- PNR886 and PNR962 are effective in reducing protein aggregation associated with neurodegenerative diseases.
- These TDZD analogs demonstrate significant therapeutic potential for tau- and amyloid-associated conditions like AD.
- The compounds' ability to extend lifespan suggests broader applications in mitigating age-related decline and mortality.

