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Biology subjects

Hafeez, S.

Publications and source records attributed to Hafeez, S..

3 recordsLinked to original sources

Spatially-resolved multimodal profiling identifies functionally-heterogeneous cancer-associated fibroblasts associated with poor radiotherapy outcomes in muscle-invasive bladder cancer.

Background: Cancer-associated fibroblasts (CAFs) contribute to systemic therapy resistance in muscle-invasive bladder cancer (MIBC), but their functional heterogeneity and relevance to curative bladder-preserving radiotherapy, are poorly understood. Methods: Transcriptomic analysis was performed on 279 tumours from BC2001, a phase 3 radiotherapy clinical trial. To study CAF heterogeneity, we integrated bulk RNA-seq, single-cell spatial analysis of multiplex immunofluorescence images and quantification of extracellular matrix (ECM) features in 155 MIBC biopsies. The functional heterogeneity of distinct CAF populations was evaluated by single-nuclear RNA-seq. Spatial interactions between CAF populations and CD8+ T-cells was assessed and the relevance of lymphocytes to radiation responses was evaluated in a CAF-enriched murine bladder cancer model (BBN963). Results: BC2001 patients with CAF-enriched tumours had worse overall survival (HR=1.671, 95% CI 1.221-2.287, Log-rank p=0.0012). CAF abundance and antigen expression was highly heterogenous. Podoplanin (PDPN) was expressed on the majority of CAFs and was associated with inflammatory pathways. Enrichment of CAF gene signatures was associated with a significant increase in CAFs expressing fibroblast activation protein (FAP) (p=0.004) and dense ECM features (p=0.0004). Fifty-three percent of tumours exhibited stromal CD8+ T-cell exclusion with significant enrichment in FAP-dominant neighbourhoods (p<0.001). In vivo, lymphocytes were critical for radiation-induced tumour control, indicating that immune cold or excluded tumours may have limited radiotherapy responses. Conclusion: In MIBC, CAFs are associated with poor radiotherapy outcomes. Multiple mechanisms are deployed by functionally-heterogeneous CAFs, including promotion of chronic inflammation by PDPN+ CAFs and ECM remodelling by FAP+ CAFs which impact CD8+ T-cell distribution and radiation responses.

cancer biology↗

A High-Affinity Nanobody Recognizing mNeonGreen Enables Versatile Biochemical, Cellular, and in vivo Applications.

mNeonGreen (mNG) is among the brightest and most photostable monomeric green fluorescent proteins and is widely used for protein tagging. Here, we present sdAb(mNG), a high-affinity single-domain antibody (sdAb) that enables biochemical capture, imaging, and manipulation of mNG-tagged proteins. A 1.26 [A] crystal structure reveals an extensive interaction surface between mNG and sdAb(mNG), accounting for its high affinity (KD = 0.39 nM) and robust target recognition across diverse experimental conditions. This allows a single sdAb to support applications that typically require multiple specialized tools. We demonstrate the utility of sdAb(mNG) in several example applications including highly specific immunoprecipitation, direct immunofluorescence, and super-resolution imaging. Importantly, sdAb(mNG) retains high-performance target recognition even in intracellular environments. When expressed as an intrabody in living mammalian cells, sdAb(mNG) enables relocalization of mNG-tagged proteins to defined compartments or visualization of synaptic vesicle transport in primary neurons. In zebrafish, fusion of sdAb(mNG) to an F-box degradation domain induces cell-autonomous depletion of an endogenous mNG-tagged transcription factor and produces a clear developmental phenotype. These findings establish sdAb(mNG) as a versatile and robust affinity reagent that converts mNG from a passive fluorescent reporter into a multifunctional handle for imaging, proteomics, and programmable manipulation of endogenous and engineered proteins.

biochemistry↗

Utility of recombinant envelope domain III as a diagnostic antigen for the specific detection of Kyasanur Forest Disease

Kyasanur Forest Disease (KFD), commonly known as "monkey fever," is a highly neglected tropical disease caused by the Kyasanur Forest Disease Virus (KFDV). KFD is endemic to Western Ghats of Karnataka, India, with seasonal outbreaks during December to June every year. As there is no standard treatment regime, KFD can be fatal with a mortality rate of 2-10%. Currently, KFD is detected through a non-specific IgM-ELISA followed by RT-PCR, which often delays diagnosis, leading to increased disease severity and even death. To address this, we focused on developing a specific antigen-based KFD detection. The KFDV Envelope Domain III (EDIII) and Non-Structural 1 (NS1) proteins were chosen as detection markers, cloned, and expressed using pET28a(+) vector in BL-21 (Rosetta) E. coli and purified. These proteins were used to raise polyclonal antibodies in rabbits and the antibody titre was found to be 1:256,000 and 1:512,000 against rEDIII and rNS1 proteins, respectively. Importantly, these polyclonal antibodies showed no cross-reactivity against corresponding dengue virus EDIII and NS1 proteins. Using polyclonal antibodies against rEDIII, we developed sandwich ELISA for the specific detection of KFD, which has demonstrated high specificity and sensitivity. Further, anti-rEDIII polyclonal antibodies also detected full-length KFDV-E protein expressed in mammalian cells, confirming the antibody specificity for the native viral antigen.

microbiology↗