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Marina, R. J.

Publications and source records attributed to Marina, R. J..

2 recordsLinked to original sources

Rational Generation of Monoclonal Antibodies and Intrabodies Selective for Pathogenic TDP-43

TAR DNA-binding protein 43 (TDP-43), encoded by the TARDBP gene, is a ribonucleoprotein associated with the pathogenesis of amyotrophic lateral sclerosis (ALS), frontotemporal dementia (FTD), and Alzheimers disease (AD). Under physiological conditions, TDP-43 is predominantly localized in the nucleus, where it participates in a variety of cellular functions related to RNA splicing, transport, and stability, as well as miRNA biogenesis. In disease, it is disproportionately mislocalized to the cytoplasm where it forms aggregates, which contribute to neurotoxicity and prion-like cell-to-cell propagation of pathogenic TDP-43. Targeting of misfolded aggregates of TDP-43 represents an attractive therapeutic strategy. However, development of effective immunotherapeutic agents remains a challenge, as they require stringent selectivity for misfolded TDP-43 in order to maintain the essential functions of physiologically native TDP-43. To address this issue, monoclonal antibodies (mAbs) and intrabodies were generated against an epitope in the N-terminal domain of TDP-43 that is only exposed when the protein is misfolded, but not in its properly folded form. We show that mouse and rabbit mAbs against this epitope displayed high binding affinities by surface plasmon resonance analysis and selectively reacted with pathological TDP-43 in post-mortem tissues from ALS, FTD, and AD patients. In a cell line system, human embryonic kidney (HEK) 293T cells, mAbs and corresponding intrabodies specifically reacted with cytoplasmic aggregates of transfected misfolded TDP-43 lacking the nuclear localization signal, TDP-43{Delta}NLS. Functionally, mAbs inhibited cell-to-cell transmission of misfolded TDP-43 and the seeding activity of misfolded TDP-43 from FTLD brain homogenates by a novel RT-QuIC assay. Intrabodies promoted the degradation of intracellular aggregates of TDP-43 in HEK293T cells and in induced pluripotent stem cell-derived motor neurons (iPSC-MNs) from ALS patients. The results provide proof-of-concept evidence that supports selective targeting of misfolded toxic aggregates of TDP-43 as a potentially safe and effective avenue to treat neurodegenerative diseases associated with TDP-43 proteinopathy.

immunology↗

Transcriptional shut-off of MAP kinase signaling enables pluripotency maintenance during diapause

Exposure of unicellular or multicellular organisms to adverse environmental conditions, including nutrient deprivation, may induce a state of suspended animation or diapause. The diapause minimizes the organisms reliance on external energy sources and ensures survival. Among different forms of diapause, embryonic diapause, caused by a limited supply of nutrients to the growing embryos, is particularly challenging for the organism. Diapause embryos stop developing at the peak of pluripotent cell differentiation and maintain this undifferentiated yet entirely vital state despite the overall reduction in anabolic processes and genome-wide transcriptional repression. Using ES cells commonly employed to study the mechanism of embryonic diapause, we solve the paradox of the cell maintenance in an undifferentiated ES cell state during diapause. We find that broad transcriptional repression by long-term inhibition of the bromodomain and extra-terminal (BET) proteins causes diapause. These diapause ES cells upregulate a functionally linked group of genes encoding negative regulators of MAP kinase signaling (NRMKS), which play a crucial role in ES cell differentiation. We find that elevated NRMKS expression is a hallmark of the diapause cells and cells exposed to diapause-inducing conditions, including mTOR inhibition, and is required for the maintenance of ES cell pluripotency during diapause. Mechanistically, exposure of ES cells to diapause-inducing conditions leads to rapid decline of the Capicua transcriptional repressor (CIC) at the NRMKS gene promoters, followed by transcriptional upregulation of NRMKS genes. The mTOR and BET-dependent transcriptional switch supporting the undifferentiated state of the diapause ES cells suggests a broader usage of this mechanism in maintaining the undifferentiated state of metabolically dormant stem- or stem-like cells in different tissues.

cell biology↗