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Borasi, H.

Publications and source records attributed to Borasi, H..

2 recordsLinked to original sources

Neuropilin-1 functions as a proviral and immunoregulatory host factor during Chikungunya virus infection

Neuropilin-1 (NRP1) is a transmembrane glycoprotein involved in angiogenesis, neurodevelopment, inflammation, cancer driven immune suppression, and immune homeostasis. However, its contribution to virus-induced immune responses is not explored. Chikungunya virus (CHIKV) is a re-emerging arthritogenic alphavirus that causes severe arthralgia, and myalgia, accompanied by heightened inflammatory cytokine responses. The host factors that drive these inflammatory responses, however, remain poorly defined. Here, in this current study, the role of NRP1 in CHIKV infection was investigated using in vitro, and in vivo model systems. Using genetic manipulation, pharmacological, and antibody blockade-mediated approaches in murine and human cellular infection models, it was demonstrated that NRP1 promotes CHIKV infection while restraining the production of proinflammatory cytokines. Furthermore, NRP1 inhibition selectively increased JNK phosphorylation. Hence, inhibiting JNK reduced the elevated cytokine production caused by NRP1 blockade. Moreover, NRP1 interacted with CHIKV-E1 and is involved in multiple phases of CHIKV infection. In addition, it was demonstrated that NRP1 inhibition using EG00229 trifluoroacetate can reduce viral infection in several CHIKV-susceptible cells, human peripheral blood macrophages, and in the in vivo mice model of infection. Together, these findings indicate that NRP1 is an important host factor and a probable therapeutic target during CHIKV infection. IMPORTANCEChikungunya virus (CHIKV) causes acute febrile illness that can progress to debilitating chronic musculoskeletal and occasional neurological complications. The absence of a globally available effective vaccine and the lack of specific antivirals underscore CHIKV as a major burden, especially in endemic tropical regions. There is a growing need to understand host factors that shape CHIKV-driven immune response. The importance of our study lies in understanding the immunoregulatory role of the host receptor Neuropilin-1 (NRP1) during CHIKV infection. We identify NRP1 as a novel host factor of CHIKV infection that also acts as a rheostat to restrict the inflammatory viral immune response. Moreover, we report anti-viral potential of the NRP1 antagonist EG00229 trifluoroacetate in multiple cell lines, primary cells, and mice model. Our findings indicate NRP1 as a probable therapeutic target in CHIKV pathogenesis.

immunology↗

Smartphone-Validated Portable Paper-Based Device Integrated with an Electropolymerized Molecularly Imprinted Polymer for Serotonin Detection in Serum Samples

Accurate and decentralized quantification of serotonin, also known as 5-hydroxytryptamine (5-HT), in biological fluids is critically important for the diagnosis, prognosis, and therapeutic monitoring of neurological and psychiatric disorders. However, conventional analytical methods generally rely on centralized laboratory infrastructure, skilled personnel, and labor-intensive sample processing, which restrict their applicability in rapid near-patient and point-of-care settings. Herein, we report a portable molecularly imprinted polymer (MIP)-based electrochemical sensing platform for selective and on-site detection of serotonin using screen-printed carbon electrodes (SPCEs). The biomimetic recognition interface was fabricated through direct electropolymerization of a polydopamine recognition layer in the presence of serotonin as the template molecule, followed by template extraction to generate complementary recognition cavities for selective rebinding. The sensor fabrication parameters, including monomer concentration, electropolymerization cycles, template-to-monomer stoichiometry, and electrolyte pH, were systematically optimized to achieve improved sensitivity, selectivity, and signal stability. Under optimized conditions, the MIP/SPCE sensor exhibited a broad linear response from 10 pM -10 {micro}M in phosphate buffer, with a correlation coefficient of R2 = 0.974 and an ultralow limit of detection of 0.16 pM. The analytical applicability of the platform was further validated in spiked artificial serum, where the sensor achieved an LOD of 0.12 pM, satisfactory recovery values of 88.66-96.02%, and acceptable precision with RSD values [≤] 8.43% (n=3), confirming its reliability in a complex biological matrix. The developed sensor demonstrated excellent selectivity toward serotonin against physiologically relevant interferents, maintaining signal retention between 99% and 101%. In addition, the platform showed high operational repeatability with an RSD of 0.45%, good inter-electrode reproducibility with an RSD of 6.3%, and long-term storage stability, retaining 90-110% of its initial response over 28 days. Importantly, cross-platform validation using a smartphone-coupled potentiostat demonstrated strong analytical agreement with laboratory-grade instrumentation, as evidenced by R2 = 0.9967 and a slope of 1.023. These findings establish the proposed MIP/SPCE platform as a simple, low-cost, portable, and smartphone-compatible electrochemical device for field-deployable serotonin monitoring in clinically relevant samples.

bioengineering↗