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Biology subjects

Grinstaff, M.

Publications and source records attributed to Grinstaff, M..

9 recordsLinked to original sources

Self-amplifying RNA-based CAR T cell therapy with enhanced duration and multi-genic logic function

Chimeric antigen receptor T (CAR-T) cell therapy is transforming the treatment landscape of hematological malignancies. However, manufacturing with integrating viral vectors is costly, slow, and carries risks including insertional mutagenesis, prolonged B cell aplasia, and other long-term toxicities. Expression of CAR with mRNA can reduce cost, manufacturing timelines, and improve safety. However, the short-lived expression necessitates frequent repeat dosing. Here, we describe a modified self-amplifying RNA (saRNA) platform for engineering CAR T cells with prolonged CAR expression and enhanced durability of tumor control relative to mRNA CAR T cells. In an acute lymphoblastic leukemia (ALL) xenograft model, saRNA CAR T cells achieve superior tumor suppression and prolong survival. Further, a single-strand modified saRNA supports the co-expression of multiple proteins, enabling the construction of advanced CAR systems, such as OR- and AND-gated logic CAR T cells. Together, these results highlight saRNA as a powerful and versatile platform for CAR T cell engineering with favorable safety, efficacy, and accessibility.

bioengineering↗

In Situ Photoactivated Hydrogel Adhesive Dressings for Post Colon Polypectomies (PolypCures)

Colon polypectomy is a widely performed endoscopic procedure that reduces the incidence of colorectal cancer but leaves exposed colonic wounds susceptible to bleeding, perforation, and infection. The current standard of wound care, mechanical clips, is limited by technical complexity, high cost, and poor efficacy for large (> 2 cm in diameter) or difficult-to-access lesions. Here, we present PolypCure, an in situ photoactivated hydrogel adhesive dressing delivered via a single catheter, through either oozing or spraying methods, to achieve rapid, spatiotemporally controlled sealing and hemostasis (within 2 min) of colon lesions using the white light source integrated into standard endoscopic instruments. The hydrogel, composed of norbornene- and thiol-functionalized polyethylene glycol, carboxymethyl cellulose, and Eosin Y, exhibits mechanical properties comparable to colon tissue (G [~] 6 kPa), strong shear strength (> 15 kPa), low swelling (< 200%), and small pore size ([~] 20 {micro}m), ensuring long-term stability (up to 30 days) and protection against bacterial infiltration. The formulation also demonstrates biocompatibility and hemocompatibility. In an in vivo pig colon endoscopic mucosal resection (EMR) model, PolypCure fully adheres to large lesions for at least 3 days and promotes early-stage wound healing. Overall, PolypCure is a promising solution to wound management post-polypectomy.

bioengineering↗

Relaxin-2 drives regenerative healing and suppresses scar formation

Fibrotic scarring is a pervasive and unresolved challenge in medicine, leading to permanent disfigurement, impaired mobility, and severe disruption of basic skin functions including elasticity, barrier protection, and thermoregulation. Despite its far-reaching personal, clinical, and economic impact, affecting hundreds of millions worldwide after surgery, trauma, and burns, no effective treatments exist to halt or reverse pathological scar formation. Scarring results from uncontrolled TGF-b1 signaling, which drives excessive deposition of extracellular matrix (ECM) proteins such as collagen-I/III and accumulation of alpha-smooth muscle actin (alpha-SMA), producing rigid, dysfunctional tissue. Here, we present a mechanistically guided approach targeting this unmet clinical need, leveraging the natural antifibrotic peptide hormone relaxin-2 (RLX-2) to actively remodel dermal architecture. RLX-2 signals via its G-protein coupled receptor RXFP1, upregulating matrix metalloproteinases (MMPs) and inhibiting aberrant ECM production. In TGF-b1-activated dermal fibroblasts across 2D and 3D in vitro models, ex vivo healthy and scarred human skin samples - cultured under physiological and pathological tension - and in an in vivo murine burn wound model, RLX-2 robustly suppresses fibrosis, restores regenerative tissue features, and rescues dermal architecture. Importantly, RLX-2 achieves this result without compromising the normal wound healing process, highlighting its potential as a transformative therapy for both prevention and reversal of pathological scarring.

bioengineering↗

Modified self-amplifying RNAs mediate robust and prolonged gene expression in the mammalian brain

Facile, non-genomic integrating gene delivery technologies are lacking for rapid onset and prolonged protein expression in the brain. Here we report the protein expression and cell type tropism for an advanced messenger ribonucleic acid (mRNA) technology, modified 5-hydroxymethylcytidine (hm5C) self-amplifying ribonucleic acid (saRNA), when injected into the mouse brain or applied to ex vivo human cortical brain slices. saRNA, encoding fluorescent proteins, encapsulated in an LNP formulation comprising ALC-0315 (present in Comirnaty(R)) efficiently mediates long-lasting protein expression in mouse brain cells beyond five weeks, with detectable expression in some neurons at three months. hm5C saRNA substantially outperforms N1m{Psi} mRNA. In addition to transfecting astrocytes and neurons at the injection site, hm5C saRNA-LNPs label neurons retrogradely. Excitingly, hm5C saRNA-LNPs afford protein expression in human cortical brain slices, with expression emerging within 24 hours and lasting beyond 76 days. Modified saRNA provides new opportunities for mechanistic neuroscience research and therapeutic development.

neuroscience↗

Targeting Lysosomal pH Restores Mitochondrial Quality Control in GBA1-Mutant Parkinsons Disease

BackgroundHeterozygous mutations in the Glucocerebrosidase gene (GBA1), which encodes the lysosomal enzyme {beta}-glucocerebrosidase (GCase), are a genetic risk factor for Parkinsons disease (PD). The pathophysiological consequences of GBA1 mutations on dopaminergic neuronal function, especially their impact on lysosomal function, mitophagy, and mitochondrial bioenergetics, remain unclear. MethodsFibroblasts and dopaminergic neurons generated from induced pluripotent stem cells (iPSCs) derived from patients with GBA1-PD were used in the study. Live-cell imaging was performed to measure lysosomal acidification, protease activity, mitochondrial membrane potential, and mitophagy. Mitochondrial morphology and autophagic vesicles were examined using transmission electron microscopy. Oxygen consumption rate was measured by Seahorse assay. V-ATPase assembly was quantified using FLIM-FRET, and pharmacological interventions included rapamycin and acidic nanoparticles. Statistical analyses involved unpaired t-tests, one-way ANOVA, and two-way ANOVA. ResultsGCase activity, lysosomal acidification, protease activity, mitophagy and mitochondrial bioenergetic function were all impaired. Mitochondria were fragmented, with reduced membrane potential and oxygen consumption. MTORC1 was constitutively phosphorylated and FLIM-FRET measurements confirmed impaired lysosomal V-ATPase assembly, which was reversed following rapamycin treatment. Rapamycin and lysosome-targeted acidic nanoparticles rescued lysosomal pH, restored mitophagy, mitochondrial membrane potential and mitochondrial OXPHOS complex levels in GBA1 mutant dopaminergic neurons. ConclusionsWe reveal a novel mechanistic link between GBA1 mutations and mitochondrial dysfunction, as disruption of V-ATPase assembly driven by MTORC1 activation impairs lysosomal acidification. Mitophagy is therefore impaired leading to mitochondrial dysfunction, undermining dopaminergic cell function and fate. Pharmacological intervention with rapamycin or acidic nanoparticles restore lysosomal pH and rescue mitochondrial function, signposting a novel therapeutic approach for GBA1-PD.

neuroscience↗

A sulfonated cartilage interpenetrating polymer network reinforces and protects the extracellular matrix of degraded cartilage

Cartilage extracellular matrix (ECM) comprises a type-II collagen fibril network that affords structure and tensile strength, complemented by a negatively charged, sulfated glycosaminoglycan (GAG) matrix that retains interstitial water. These components act synergistically, bestowing the rheological and tribological material properties essential to cartilage function. At the onset of osteoarthritis, a disease characterized by cartilage degeneration, GAGs diminish from the ECM reducing interstitial fluid load support (IFLS) and transferring load to the collagen fibril network, which subsequently breaks down, culminating in increased hydraulic permeability, and decreased cartilage stiffness. We restore the material properties of damaged cartilage critical to diarthrodial joint function by forming an interpenetrating polymer network (IPN) with the native collagen using a synthetic, hydrophilic, and biocompatible GAG-mimetic polymer. Upon visible light activation, the monomer, 3-sulfopropylmethacrylate (SPM), and the crosslinker, polyethylene glycol diacrylate (PEGDA), form a sulfonated and anionic IPN that entangles and fills the existing porous degraded collagen matrix. Mechanistically, the highly sulfated, anionic SPM IPN retards water transport, reestablishes collagen fibril network integrity, and restores tissue IFLS, thereby returning the stiffness and viscoelastic properties of degraded cartilage to healthy levels. Additionally, the SPM IPN protects cartilage from further degradation by reducing the infiltration of inflammatory cytokines that upregulate catabolic matrix metalloproteinases and downregulate GAG production. Statement of significanceAmelioration of OA requires a comprehensive approach: neutralize or impede catabolic enzymes that degrade cartilage and reconstitute damaged cartilage by augmenting tissue ECM constituents. Currently, there are no clinical treatments that restore the viscoelastic material properties of hyaline cartilage tissue critical to its mechanical function and impart chondroprotection after OA induction. This work suggests that reconstituting GAG-depleted cartilage using a synthetic sulfonated interpenetrating polymer to reestablish IFLS that can be instilled into the joint and polymerized with white light during conventional arthroscopy represents a novel, minimally invasive, clinical treatment for early OA.

bioengineering↗

A Supramolecular Self-assembly Approach to Site-Specific Antibody Conjugates via a Coiled-coil Peptides Platform

Antibody conjugates play a central role across multiple healthcare sectors with a prime example being antibody-drug conjugates (ADCs). Although widely used lysine and hinge cysteine conjugation methods yield products, the lack of site-specificity and spatial control along with the highly heterogeneous composition are significant limitations. We describe a facile supramolecular assembly method based on heterodimer coiled-coil formation for site-specific antibody conjugation. The method affords uniform loading of diverse payloads including anti-cancer agents, polymers, enzymes, fluorophores, etc. under mild aqueous conditions. Further, the facile convergent approach capitalizes on the independent strengths and flexibility of protein expression and peptide chemistry culminating in a final self-assembly step. Coiled-coil conjugation perseveres both antibody antigen binding sites for target engagement and heavy chains constant domains for Fc binding and recycling. An ADC loaded with monomethyl auristatin E targeting HER2+ tumors significantly reduces tumor volume in a human ovarian cancer xenograft model outperforming the antibody alone with validated performance against a best-in-class therapeutic. Supramolecular assembly-driven bioconjugation expands the bioorthogonal chemistry toolbox for antibody modification and opens new avenues for advanced antibody conjugates with multiple payloads.

bioengineering↗

Dispersion indices for universal quantification of fluorescently-labelled subcellular structure spatial distributions

Image analysis of subcellular structures and biological processes relies on specific, context-dependent pipelines, which are labor-intensive, constrained by the intricacies of the specific biological system, and inaccessible to broader applications. Here we introduce the application of dispersion indices, a statistical tool traditionally employed by economists, to analyze the spatial distribution and heterogeneity of subcellular structures. This computationally efficient high-throughput approach, termed GRID (Generalized Readout of Image Dispersion), is highly generalizable, compatible with open-source image analysis software, and adaptable to diverse biological scenarios. GRID readily quantifies diverse structures and processes to include autophagic puncta, mitochondrial clustering, and microtubule dynamics. Further, GRID is versatile, applicable to both 2D cell cultures and 3D multicellular organoids, and suitable for high-throughput screening and performance metric measurements, such as half-maximal effective concentration (EC50) values. The approach enables mechanistic analysis of critical subcellular structure processes of relevance for diseases ranging from metabolic and neuronal diseases to cancer as well as a first-pass screening method for identifying biologically active agents for drug discovery. Statement of SignificanceCurrent methods for image analysis in microscopy are tailored to specific biological contexts, which creates challenges in implementation and efficiency for researchers studying a diverse range of subcellular processes. Our application of dispersion indices, traditionally used in economics, offers a universal framework for high throughput quantification of biological structures, enabling easier and more consistent analysis across various biological contexts. By transforming pixel intensity and count into meaningful statistical measures, our method simplifies the quantification of subcellular structures such as autophagic puncta, microtubule dynamics, and mitochondrial clustering. This approach accelerates the quantitative analysis of sub-cellular processes in disease as well as imaged-based drug discovery. Classification: Bioengineering, Cell Biology, Applied Biological Sciences

cell biology↗

ENDO-LYSOSOME-TARGETED NANOPARTICLE DELIVERY OF ANTIVIRAL THERAPY FOR CORONAVIRUS INFECTIONS

SARS-CoV-2 can infect cells through endocytic uptake, a process which is targeted by inhibition of lysosomal proteases. However, clinically this approach to treat viral infections has afforded mixed results, with some studies detailing an oral regimen of hydroxychloroquine accompanied by significant off-target toxicities. We rationalized that an organelle-targeted approach will avoid toxicity while increasing the concentration of the drug at the target. Here we describe a lysosome-targeted, mefloquine-loaded poly(glycerol monostearate-co-{varepsilon}-caprolactone) nanoparticle (MFQ-NP) for pulmonary delivery via inhalation. Mefloquine is a more effective inhibitor of viral endocytosis than hydroxychloroquine in cellular models of COVID-19. MFQ-NPs are less toxic than molecular mefloquine, 100-150 nm in diameter, and possess a negative surface charge which facilitates uptake via endocytosis allowing inhibition of lysosomal proteases. MFQ-NPs inhibit coronavirus infection in mouse MHV-A59 and human OC43 coronavirus model systems and inhibit SARS-CoV-2-WA1 and its Omicron variant in a human lung epithelium model. This study demonstrates that organelle-targeted delivery is an effective means to inhibit viral infection.

bioengineering↗