SCTIMST DSpace (Sree Chitra Tirunal Institute for Medical Sciences and Technology)
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A cholecystic extracellular matrix-based hybrid hydrogel for skeletal muscle tissue engineering
Tailoring the properties of extracellular matrix (ECM) based hydrogels by conjugating with synthetic polymers is an emerging method for designing hybridhydrogels for a wide range of tissue engineering applications. In this study, poly(ethylene glycol) diacrylate (PEGDA), a synthetic polymer at variable concentrations (ranging from 0.2 to 2% wt/vol) was conjugated with porcine cholecyst derived ECM (C-ECM) (1% wt/vol) and prepared a biosynthetic hydrogel having enhanced physico-mechanical properties, as required for skeletal muscle tissue engineering. The C-ECM was functionalized with acrylate groups using activated N-hydroxysuccinimide ester-based chemistry and then conjugated with PEGDA via free-radical polymerization in presence of ammonium persulfate and ascorbic acid. The physicochemical characteristics of the hydrogels were evaluated by Fourier transform infrared spectroscopy and environmental scanning electron microscopy. Further, the hydrogel properties were studied by evaluating rheology, swelling, gelation time, percentage gel fraction, in vitro degradation, and mechanical strength. Biocompatibility of the gel formulations were assessed using the C2C12 skeletal myoblast cells. The hydrogel formulations containing 0.2 and 0.5% wt/vol of PEGDA were non-cytotoxic and found suitable for growth and proliferation of skeletal myoblasts. The study demonstrated a method for modulating the properties of ECM hydrogels through conjugation with bio-inert polymers for skeletal muscle tissue engineering applications
Chitra Ultraviolet C Based Facemask Disposal Bin
Used face masks are hazardous waste and must be discarded immediately upon removal. Instead of throwing used masks into the disposal bin, disinfecting the masks is essential to break the chain of infection spread. The development of this device was attempted for COVID-19 management, with the following focus: (1) solution which have sufficient science background established so that extensive experimental validation need not be attempted during the lockdown period in India. (2) Provide solution which could be replicated with local resources and minimum material movement. Therefore, in response to the pressing societal demand we designed, prototyped, verified and validated an UV-C-based multipurpose disinfection device. The device after safety and efficacy evaluation as per the Indian Council of Medical Research (ICMR) guidelines for novel COVID-19 solutions, received Central Drugs Control Standard Organization (CDSCO) registration as non-notified medical device for commercialization
Comparison of Four different techniques for estimation of Left Ventricular Volumes using intraoperative Real-time¿¿¿3D Transesophageal Echocardiography ¿¿¿ A Prospective Observational Study.
NANO-BIO INTERACTIONS: CELLULAR AND MOLECULAR EFFECTS OF NANOSCALE VANADIUM PENTOXIDE ON MAMMALIAN AND MICROBIAL MODELS
Exploring cadaver skin for standardization of rabbit and porcine burn models in research
Burn animal models provide substantial insights into burn pathophysiology. Choice of the apt model is important for determining the clinical efficacy of new medicines. Therefore, standardization of burn models is crucial for scientific research. Use of common techniques like hot water, electricity and incandescent instruments to generate animal burn models is widely reported. However, great discrepancy in employed temperature and exposure times demands user-dependent standardization of the animal model prior to research. Establishment of custom generated in vivo burn models giving consideration to reduced use, suffering and risk of the experimental animal is equally crucial. Accordingly, this pilot study demonstrates a novel approach using rabbit and porcine cadaver skin for standardization of burn parameters prior to use in live animal models. Using a custom-made soldering iron coupled to a 16cm2 surface area copper plate, burns at randomly chosen temperatures of 80˚C and 120˚C, with exposure times ranging from 60s to 180s, were produced on rabbit and porcine cadaver skins. On gross and histopathological analysis, parameters required to generate characteristic changes for deep partial and full thickness burn involvement were established. The identified temperature and exposure time parameters were further validated in live animal models. In vivo validation established the success of this approach, highlighting reduced animal use, ease, reproducibility and efficacy in burn model standardization. The findings of this study will hopefully encourage researchers to opt for cadaver skin to determine parameters required to generate a specific degree of burn prior to its use in live animals for burn research
Dextran stabilized fullerene soot induced toxicity on alveolar epithelial cells (A549 cells)
Fullerene comprises the major allotrope of carbon holding several fruitful potentials to be applied in various industrial and biomedical scenarios. Scientists have acquired large number of data on fullerene research using its derivatives like C60, C70 etc. Nevertheless, a precise focus on fullerene soot nanopaticles and its toxic impacts in living tissue is still behind mainstay even if it represents the crude parent form of all other derivatives. Present study addresses an acute toxicity profiling of fullerene soot nanoparticles in alveolar epithelial cells (A549) as a paradigm of pulmonary exposure. Surface functionalization was given for fullerene soot nanoparticles using dextran polymer as a mean to establish a stable homogenous dispersion (denoted as dFSNPs hereafter). Following functionalization, dFSNPs were characterized for various parameters including size, surface charge, morphology and functional groups using DLS, Zeta potential analysis, TEM and FT-IR measurements respectively. Effective dextran functionalization was evident from the characteristic peaks in FTIR spectra. Cell viability assessed using MTT and NRU assays; both of which showed a dose dependent cytotoxic response. Thymidine incorporation also confirmed similar trend in viability rate. In accordance with literatures, DCFHDA assay confirmed free radical scavenging activity of fullerene nanoparticles. An altered cellular morphology was observed under fluorescent microscope. Sub-cellular functionalities including lysosomal integrity and mitochondrial stability were found to be compromised at highest tested concentration of dFSNPs (160 μg/ml) without any genotoxic impacts within nuclear premises. FACS analysis following Annexin-PI staining confirmed apoptotic cell death. Hence the overall study substantiated dose dependent toxicity of dFSNPs which is likely to occur during pulmonary exposure
Effect of surface modified reduced graphene oxide nanoparticles on cerebellar granule neurons
Graphene has been the cornerstone material in various disciplines owing to its captivating properties. But graphene also exerts some toxic effects apart from its extraordinary characteristics. Various surface functionalizations on graphene are developed in order to overcome the toxicity. In this background, pluronics functionalization of reduced graphene oxide was done as an effort to modify its colloidal stability. Effect of pluronics functionalized reduced graphene oxide (rGO-P) on cerebellar granule neurons (CGNs) was examined to infer on its neurotoxic potential. Male Wister rats were exposed to rGO-P and were analyzed for acute toxicity and toxicokinetic studies. Immunotoxicity was performed on rGO-P exposed female rats on the 7th day of gestation by tritiated thymidine incorporation assay. CGNs were also isolated from rat newborns born to female rats dams exposed with rGO-P and examined for any subsequent toxic reactions. The findings suggest that CGNs isolated from rat newborns pups born to particle exposed female rats dams showed normal cell yield and morphology. Findings from toxicokinetic studies using confocal Raman mapping revealed that rGO-P has got cleared off from the blood within 21 days. Overall results validate rGO-P as safe for in vivo systems. Hence rGO-P can be fine-tuned to serve the purpose of neurobiological applications promisingly for neuroregeneration
Develop a value based e-delivery system for health care management and research (SCTIMST Project No. 5329)
Potential Skin Substitute of Biomimetic Proteins and Terpolymer with Proven Immuno-Compatible and Biodegradable Properties
Non–immunogenic matrix with desirable biological and mechanical properties could be a valuable graft to treat large area acute wounds and non–healing chronic wounds. In this study, an electrospun biodegradable polymer scaffold composed of a terpolymer PLGC [poly(lactide–glycolide–caprolactone)] incorporated with a fiin–hyaluronic acid (HA) based biomimetic composite (PLGCFIBHA) was evaluated. An appropriate mechanical properties, fioblast growth potential, biodegradability and absence of immune response were established. A significantly increased fioblast attachment and proliferation was observed with optimal physical properties. Intracutaneous (intradermal) reactivity test and guinea pig maximization test was negative as per requirements of ISO–10993–10:2010(E): biological evaluation of medical devices part 10 proving immunocompatible nature. In vitro and in vivo studies showed suitable degradability for skin tissue engineering purposes. Hence the faicated scaffold PLGCFIBHA is advocated as a potential candidate for the engineering of dermal tissue which can be used as an off–the–shelf product