Search bioRxiv⌕ Search

Biology subjects

Goodwin, A.

Publications and source records attributed to Goodwin, A..

3 recordsLinked to original sources

Conserved sequence elements in the final exon of MDM2-eight-exon skipping event reveal a cassette regulon model of alternative splicing controlled by a distal regulatory element.

Modern sequencing technologies have revealed that cancers exhibit widespread dysregulation of alternative splicing, which plays a significant role in driving tumor hallmarks. Alternative splicing enables a single gene to generate multiple mRNA variants, a fundamental mechanism that shapes the distinctive characteristics of normal cells as well as cancer cells. These splicing events are governed by complex interactions between cis- and trans-acting factors and understanding these mechanisms is crucial for effectively targeting cancer cells. This study highlights a unique splicing event in which genotoxic stress induces the skipping of eight-exons in the proto-oncogene MDM2, resulting in the formation of MDM2-ALT1, an isoform that is overexpressed in various cancers. To effectively target this splicing event, it is important to unfold the regulatory mechanism behind it. We hypothesize that the event occurs either by the autonomous regulation of individual exons (Exon autonomous model), where each exon is regulated independently or by the coordinated exclusion of an eight-exon-regulon unit (Exon Regulon model). Utilizing in-silico tools, a comprehensive modular minigene system, CRISPR-mutated cell line, and murine models, we demonstrate that this complex MDM2 splicing event is regulated by sequences within a distal terminal exon, which emerge as critical regulators, orchestrating the alternative splicing of MDM2. Constitutive expression of the Mdm2-MS2 isoform (the mouse ortholog of the human MDM2-ALT1 splice variant), achieved by mutating the Srsf2 binding-site on exon 11, modulates proliferation and apoptosis dynamics in NIH3T3 cells. Moreover, in a p53-wildtype in-vivo setting, this isoform confers a protective effect against age-induced neoplasia. Our findings support the Exon Regulon model of MDM2 splicing, regulated by distal elements analogous to distal enhancer elements that control transcription. These finding sheds light on intricacies in the splicing code that could have significant implications for developing splice variant targeting cancer therapies.

molecular biology↗

Potent and selective repression of SCN9A by engineered zinc finger repressors for the treatment of neuropathic pain

Peripheral neuropathies are estimated to affect several million patients in the US with no long-lasting therapy currently available. In humans, the Nav1.7 sodium channel, encoded by the SCN9A gene, is involved in a spectrum of inherited neuropathies, and has emerged as a promising target for analgesic drug development. The development of a selective Nav1.7 inhibitor has been challenging, in part due to structural similarities among other Nav channels. Here we present preclinical studies for the first genomic medicine approach using engineered zinc finger repressors (ZFRs) specifically targeting human/nonhuman primate (NHP) SCN9A. AAV-mediated delivery of ZFRs in human iPSC-derived neurons resulted in 90% reduction of SCN9A with no detectable off-target activity. To establish proof-of-concept, a ZFR targeting the mouse Scn9a was assessed in the SNI neuropathic pain mouse model, which resulted in up to 70% repression of Scn9a in mouse DRGs and was associated with reduction in pain hypersensitivity as measured by increased mechanical- and cold-induced pain thresholds. AAV-mediated intrathecal delivery of ZFR in NHPs demonstrated up to 60% repression of SCN9A in bulk DRG tissue and on single-cell levels in the nociceptors. The treatment was well tolerated in NHPs, and no dose-limiting findings were observed four weeks after a single intrathecal injection. Taken together, our results demonstrate that AAV-delivered ZFR targeting the SCN9A gene is promising and supports further development as a potential therapy for peripheral neuropathies.

neuroscience↗

Aedes aegypti in Maryland: The need for elevated vector surveillance at the face of a dynamic climate

We report the collection of three Aedes aegypti adult female mosquitoes in a Rockville, Maryland backyard in late July, 2023, followed by the emergence of 15 adults collected as larvae in a residential backyard in Baltimore, Maryland in mid-September, 2023. Aedes aegypti is a species primarily associated with tropical and subtropical regions, known for its significance as a vector of arboviruses, including Yellow Fever, Dengue, Zika, and Chikungunya among others. In the continental United States, Ae. aegypti populations are mostly found in the southeast, and in several isolated locations such as southern California and Arizona. This finding raises questions about the potential establishment and survival of Ae. aegypti in temperate climates, emphasizing the critical importance of robust vector surveillance programs in preventing potential outbreaks of vector-borne diseases in regions not traditionally considered endemic for this species.

ecology↗