PubMed HealthSearch

Biomedical subjects

Siyu Wang

Publications and source records attributed to Siyu Wang.

4 recordsLinked to original sources

Barcoded oligonucleotide system (BOLT) for targeted organ delivery.

The therapeutic potential of oligonucleotides (oligos) is limited by insufficient delivery to extrahepatic tissues. In vitro assays often fail to accurately predict in vivo behavior, while testing each oligo candidate in animals remains inherently low throughput. Here, we conceive a barcoded oligonucleotide system (BOLT), a platform that enables high-throughput in vivo evaluations of small-molecule ligands and identifies tissue-specific oligo delivery. BOLT integrates rational design of oligo barcodes, modular conjugation chemistry, and next-generation sequencing (NGS)-based quantification, allowing simultaneous evaluation of many chemically diverse ligand-oligo conjugates within a single animal. Notably, this platform is applicable in both mice and nonhuman primates (NHPs). Using BOLT, we discovered ligands with tropism for tissues such as the brain, lung, and muscle. Collectively, these results indicate that the BOLT platform can accelerate the discovery of tissue-targeting ligands for broad oligo therapeutics.

Journal Article

Effects of intensive blood pressure control on cardio-kidney outcomes by KDIGO risk categories: a Post Hoc analysis of ACCORD-BP and SPRINT trials.

The effects of intensive systolic blood pressure (SBP) control on cardiovascular (CV) and kidney outcomes across different Kidney Disease Improving Global Outcomes (KDIGO) risk categories remain unclear. We performed a secondary analysis of the Systolic Blood Pressure Intervention Trial (SPRINT) and the SPRINT-eligible Action to Control Cardiovascular Risk in Diabetes Blood Pressure (ACCORD-BP) trial. Participants were categorized into low, moderate, and high/very-high KDIGO risk groups. The primary outcomes were composite adverse CV events (defined as nonfatal myocardial infarction (MI), nonfatal stroke, fatal or hospitalized heart failure (HF), and CV mortality) and composite adverse kidney events (defined as a sustained decline in eGFR of &#x2265;&#xa0;40% and end-stage kidney disease (ESKD)). We found that intensive BP control reduced the risk of composite CV events (HR 0.68; 95% CI 0.59-0.78), with attenuated benefits in higher KDIGO risk categories (P for interaction = 0.055). This interaction was mainly driven by nonfatal MI and fatal or hospitalized HF (both P for interaction < 0.05). Intensive BP control increased the risk of composite kidney events (HR 1.88; 95% CI 1.52-2.33), mainly in low- and moderate-risk groups rather than in high/very-high risk groups (P for interaction = 0.04). Similar patterns were observed for sustained eGFR decline (P for interaction = 0.03), but not for ESKD (HR 1.05; 95% CI 0.74-1.48; P for interaction = 0.71). The KDIGO risk classification modified the effects of intensive BP control. Balancing CV benefits against potential kidney impacts in patients with different KDIGO risks during intensive BP treatment is recommended. Trial Registration: ClinicalTrials.gov Identifiers: NCT01206062 (SPRINT) and NCT00000620 (ACCORD).

Cardiovascular outcome

RNA chemistry and therapeutics.

RNA-based therapeutics have made substantial clinical advances, primarily due to the unique chemical and biological profiles of RNA molecules. As evidenced by the approval of various RNA drugs, some initial challenges related to RNA-based therapeutics, including issues associated with large-scale production, effective delivery and immunogenicity properties, are now being addressed. Extensive efforts have focused on chemically modifying RNA molecules to enhance their stability, increase protein production, extend circulation time and improve target specificity. Three RNA categories - small RNA, translatable RNA and CRISPR guide RNA - are now being extensively developed for therapeutic applications. This Review summarizes the synthetic methods applied to these three RNA categories, describes key chemical modification strategies being used to enhance their properties and highlights current therapeutic applications and future opportunities.

Humans

Accelerating diabetic wound healing by ROS-scavenging lipid nanoparticle-mRNA formulation.

Current treatment options for diabetic wounds face challenges due to low efficacy, as well as potential side effects and the necessity for repetitive treatments. To address these issues, we report a formulation utilizing trisulfide-derived lipid nanoparticle (TS LNP)-mRNA therapy to accelerate diabetic wound healing by repairing and reprogramming the microenvironment of the wounds. A library of reactive oxygen species (ROS)-responsive TS LNPs was designed and developed to encapsulate interleukin-4 (IL4) mRNA. TS2-IL4 LNP-mRNA effectively scavenges excess ROS at the wound site and induces the expression of IL4 in macrophages, promoting the polarization from the proinflammatory M1 to the anti-inflammatory M2 phenotype at the wound site. In a diabetic wound model of db/db mice, treatment with this formulation significantly accelerates wound healing by enhancing the formation of an intact epidermis, angiogenesis, and myofibroblasts. Overall, this TS LNP-mRNA platform not only provides a safe, effective, and convenient therapeutic strategy for diabetic wound healing but also holds great potential for clinical translation in both acute and chronic wound care.

Wound Healing