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Dive into the research topics where Subhadip Ghatak is active.

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Featured researches published by Subhadip Ghatak.


Molecular Therapy | 2015

Barrier Function of the Repaired Skin Is Disrupted Following Arrest of Dicer in Keratinocytes

Subhadip Ghatak; Yuk Cheung Chan; Savita Khanna; Jaideep Banerjee; Jessica Weist; Sashwati Roy; Chandan K. Sen

Tissue injury transiently silences miRNA-dependent posttranscriptional gene silencing in its effort to unleash adult tissue repair. Once the wound is closed, miRNA biogenesis is induced averting neoplasia. In this work, we report that Dicer plays an important role in reestablishing the barrier function of the skin post-wounding via a miRNA-dependent mechanism. MicroRNA expression profiling of skin and wound-edge tissue revealed global upregulation of miRNAs following wound closure at day 14 post-wounding with significant induction of Dicer expression. Barrier function of the skin, as measured by trans-epidermal water loss, was compromised in keratinocyte-specific conditional (K14/Lox-Cre) Dicer-ablated mice because of malformed cornified epithelium lacking loricrin expression. Studies on human keratinocytes recognized that loricrin expression was inversely related to the expression of the cyclin-dependent kinase inhibitor p21(Waf1/Cip1). Compared to healthy epidermis, wound-edge keratinocytes from Dicer-ablated skin epidermis revealed elevated p21(Waf1/Cip1) expression. Adenoviral and pharmacological suppression of p21(Waf1/Cip1) in keratinocyte-specific conditional Dicer-ablated mice improved wound healing indicating a role of Dicer in the suppression of p21(Waf1/Cip1). This work upholds p21(Waf1/Cip1) as a druggable target to restore barrier function of skin suffering from loss of Dicer function as would be expected in diabetes and other forms of oxidant insult.


Journal of Immunology | 2016

Correction of MFG-E8 Resolves Inflammation and Promotes Cutaneous Wound Healing in Diabetes

Amitava Das; Subhadip Ghatak; Mithun Sinha; Scott Chaffee; Noha S. Ahmed; Narasimham L. Parinandi; E.S. Wohleb; John F. Sheridan; Chandan K. Sen; Sashwati Roy

Milk fat globule epidermal growth factor-factor 8 (MFG-E8) is a peripheral glycoprotein that acts as a bridging molecule between the macrophage and apoptotic cells, thus executing a pivotal role in the scavenging of apoptotic cells from affected tissue. We have previously reported that apoptotic cell clearance activity or efferocytosis is compromised in diabetic wound macrophages. In this work, we test the hypothesis that MFG-E8 helps resolve inflammation, supports angiogenesis, and accelerates wound closure. MFG-E8−/− mice displayed impaired efferocytosis associated with exaggerated inflammatory response, poor angiogenesis, and wound closure. Wound macrophage-derived MFG-E8 was recognized as a critical driver of wound angiogenesis. Transplantation of MFG-E8−/− bone marrow to MFG-E8+/+ mice resulted in impaired wound closure and compromised wound vascularization. In contrast, MFG-E8−/− mice that received wild-type bone marrow showed improved wound closure and improved wound vascularization. Hyperglycemia and exposure to advanced glycated end products inactivated MFG-E8, recognizing a key mechanism that complicates diabetic wound healing. Diabetic db/db mice suffered from impaired efferocytosis accompanied with persistent inflammation and slow wound closure. Topical recombinant MFG-E8 induced resolution of wound inflammation, improvements in angiogenesis, and acceleration of closure, upholding the potential of MFG-E8–directed therapeutics in diabetic wound care.


Antioxidants & Redox Signaling | 2015

microRNA–200b as a Switch for Inducible Adult Angiogenesis

Mithun Sinha; Subhadip Ghatak; Sashwati Roy; Chandan K. Sen

SIGNIFICANCE Angiogenesis is the process by which new blood vessels develop from a pre-existing vascular system. It is required for physiological processes such as developmental biology and wound healing. Angiogenesis also plays a crucial role in pathological conditions such as tumor progression. The underlying importance of angiogenesis necessitates a highly regulated process. RECENT ADVANCES Recent works have demonstrated that the process of angiogenesis is regulated by small noncoding RNA molecules called microRNAs (miRs). These miRs, collectively referred to as angiomiRs, have been reported to have a profound effect on the process of angiogenesis by acting as either pro-angiogenic or anti-angiogenic regulators. CRITICAL ISSUES In this review, we will discuss the role of miR-200b as a regulator of angiogenesis. Once the process of angiogenesis is complete, anti-angiogenic miR-200b has been reported to provide necessary braking. Downregulation of miR-200b has been reported across various tumor types, as deregulated angiogenesis is necessary for tumor development. Transient downregulation of miR-200b in wounds drives wound angiogenesis. FUTURE DIRECTIONS New insights and understanding of the molecular mechanism of regulation of angiogenesis by miR-200b has opened new avenues of possible therapeutic interventions to treat angiogenesis-related patho-physiological conditions. Antioxid. Redox Signal. 22, 1257-1272.


Nanomedicine: Nanotechnology, Biology and Medicine | 2016

AntihypoxamiR functionalized gramicidin lipid nanoparticles rescue against ischemic memory improving cutaneous wound healing

Subhadip Ghatak; Jilong Li; Yuk Cheung Chan; Surya Gnyawali; Erin Steen; Bryant C. Yung; Savita Khanna; Sashwati Roy; Robert J. Lee; Chandan K. Sen

Peripheral vasculopathies cause severe wound hypoxia inducing the hypoxamiR miR-210. High level of miR-210, persisting in wound-edge tissue as ischemic memory, suppresses oxidative metabolism and inhibits cell proliferation necessary for healing. In wound-edge tissue of chronic wound patients, elevated miR-210 was tightly associated with inhibition of epidermal cell proliferation as evident by lowered Ki67 immunoreactivity. To inhibit miR-210 in murine ischemic wound-edge tissue, we report the formulation of antihypoxamiR functionalized gramicidin lipid nanoparticles (AFGLN). A single intradermal delivery of AFGLN encapsulating LNA-conjugated anti-hypoximiR-210 (AFGLNmiR-210) lowered miR-210 level in the ischemic wound-edge tissue. In repTOP™mitoIRE mice, AFGLNmiR-210 rescued keratinocyte proliferation as visualized by in vivo imaging system (IVIS). 31P NMR studies showed elevated ATP content at the ischemic wound-edge tissue following AFGLNmiR-210 treatment indicating recovering bioenergetics necessary for healing. Consistently, AFGLNmiR-210 improved ischemic wound closure. The nanoparticle based approach reported herein is effective for miR-directed wound therapeutics warranting further translational development.


Nature Nanotechnology | 2017

Topical tissue nano-transfection mediates non-viral stroma reprogramming and rescue

Daniel Gallego-Perez; Durba Pal; Subhadip Ghatak; Veysi Malkoc; Natalia Higuita-Castro; Surya Gnyawali; Lingqian Chang; Wei-Ching Liao; Junfeng Shi; Mithun Sinha; Kanhaiya Singh; Erin Steen; Alec Sunyecz; Richard Stewart; Jordan Moore; Thomas Ziebro; Robert Northcutt; Michael Homsy; Paul Bertani; Wu Lu; Sashwati Roy; Savita Khanna; Cameron Rink; Vishnu Baba Sundaresan; Jose Otero; L. James Lee; Chandan K. Sen

Although cellular therapies represent a promising strategy for a number of conditions, current approaches face major translational hurdles, including limited cell sources and the need for cumbersome pre-processing steps (for example, isolation, induced pluripotency). In vivo cell reprogramming has the potential to enable more-effective cell-based therapies by using readily available cell sources (for example, fibroblasts) and circumventing the need for ex vivo pre-processing. Existing reprogramming methodologies, however, are fraught with caveats, including a heavy reliance on viral transfection. Moreover, capsid size constraints and/or the stochastic nature of status quo approaches (viral and non-viral) pose additional limitations, thus highlighting the need for safer and more deterministic in vivo reprogramming methods. Here, we report a novel yet simple-to-implement non-viral approach to topically reprogram tissues through a nanochannelled device validated with well-established and newly developed reprogramming models of induced neurons and endothelium, respectively. We demonstrate the simplicity and utility of this approach by rescuing necrotizing tissues and whole limbs using two murine models of injury-induced ischaemia.


Nanomedicine: Nanotechnology, Biology and Medicine | 2016

Deterministic transfection drives efficient nonviral reprogramming and uncovers reprogramming barriers

Daniel Gallego-Perez; Jose Otero; Catherine Czeisler; Junyu Ma; Cristina Ortiz; Patrick Gygli; Fay Patsy Catacutan; Hamza Numan Gokozan; Aaron Cowgill; Thomas W. Sherwood; Subhadip Ghatak; Veysi Malkoc; Xi Zhao; Wei-Ching Liao; Surya Gnyawali; Xinmei Wang; Andrew F. Adler; Kam W. Leong; Brian C. Wulff; Traci A. Wilgus; Candice C. Askwith; Savita Khanna; Cameron Rink; Chandan K. Sen; L. James Lee

UNLABELLED Safety concerns and/or the stochastic nature of current transduction approaches have hampered nuclear reprogrammings clinical translation. We report a novel non-viral nanotechnology-based platform permitting deterministic large-scale transfection with single-cell resolution. The superior capabilities of our technology are demonstrated by modification of the well-established direct neuronal reprogramming paradigm using overexpression of the transcription factors Brn2, Ascl1, and Myt1l (BAM). Reprogramming efficiencies were comparable to viral methodologies (up to ~9-12%) without the constraints of capsid size and with the ability to control plasmid dosage, in addition to showing superior performance relative to existing non-viral methods. Furthermore, increased neuronal complexity could be tailored by varying BAM ratio and by including additional proneural genes to the BAM cocktail. Furthermore, high-throughput NEP allowed easy interrogation of the reprogramming process. We discovered that BAM-mediated reprogramming is regulated by AsclI dosage, the S-phase cyclin CCNA2, and that some induced neurons passed through a nestin-positive cell stage. FROM THE CLINICAL EDITOR In the field of regenerative medicine, the ability to direct cell fate by nuclear reprogramming is an important facet in terms of clinical application. In this article, the authors described their novel technique of cell reprogramming through overexpression of the transcription factors Brn2, Ascl1, and Myt1l (BAM) by in situ electroporation through nanochannels. This new technique could provide a platform for further future designs.


Scientific Reports | 2017

Retooling Laser Speckle Contrast Analysis Algorithm to Enhance Non-Invasive High Resolution Laser Speckle Functional Imaging of Cutaneous Microcirculation.

Surya Gnyawali; Kevin Blum; Durba Pal; Subhadip Ghatak; Savita Khanna; Sashwati Roy; Chandan K. Sen

Cutaneous microvasculopathy complicates wound healing. Functional assessment of gated individual dermal microvessels is therefore of outstanding interest. Functional performance of laser speckle contrast imaging (LSCI) systems is compromised by motion artefacts. To address such weakness, post-processing of stacked images is reported. We report the first post-processing of binary raw data from a high-resolution LSCI camera. Sharp images of low-flowing microvessels were enabled by introducing inverse variance in conjunction with speckle contrast in Matlab-based program code. Extended moving window averaging enhanced signal-to-noise ratio. Functional quantitative study of blood flow kinetics was performed on single gated microvessels using a free hand tool. Based on detection of flow in low-flow microvessels, a new sharp contrast image was derived. Thus, this work presents the first distinct image with quantitative microperfusion data from gated human foot microvasculature. This versatile platform is applicable to study a wide range of tissue systems including fine vascular network in murine brain without craniotomy as well as that in the murine dorsal skin. Importantly, the algorithm reported herein is hardware agnostic and is capable of post-processing binary raw data from any camera source to improve the sensitivity of functional flow data above and beyond standard limits of the optical system.


Plastic and Reconstructive Surgery | 2016

Cutaneous Imaging Technologies in Acute Burn and Chronic Wound Care.

Chandan K. Sen; Subhadip Ghatak; Surya Gnyawali; Sashwati Roy; Gayle M. Gordillo

Background: Wound assessment relies on visual evaluation by physicians. Such assessment is largely subjective and presents the opportunity to explore the use of emergent technologies. Methods: Emergent and powerful noninvasive imaging technologies applicable to assess burn and chronic wounds are reviewed. Results: The need to estimate wound depth is critical in both chronic wound and burn injury settings. Harmonic ultrasound technology is powerful to study wound depth. It addresses the limitations of optical imaging with limited depth of penetration. What if a wound appears epithelialized by visual inspection, which shows no discharge yet is covered by repaired skin that lacks barrier function? In this case although the wound is closed as defined by current standards, it remains functionally open, presenting the risk of infection and other postclosure complications. Thus, assessment of skin barrier function is valuable in the context of assessing wound closure. Options for the study of tissue vascularization are many. If noncontact and noninvasive criteria are of importance, laser speckle imaging is powerful. Fluorescence imaging is standard in several clinical settings and is likely to serve the wound clinics well as long as indocyanine green injection is not of concern. A major advantage of harmonic ultrasound imaging of wound depth is that the same system is capable of providing information on blood flow dynamics in arterial perforators. Conclusion: With many productive imaging platforms to choose from, wound care is about to be transformed by technology that would help assess wound severity.


MicroRNA in Regenerative Medicine | 2015

MicroRNA Biogenesis in Regenerative Medicine

Subhadip Ghatak; Chandan K. Sen

Abstract Regenerative medicine is a new scientific and medical discipline for developing regenerative capabilities to restore function to damaged cells, tissues, and organs. MicroRNAs (miRNAs) are a novel class of small regulatory RNAs that have emerged as post-transcriptional gene silencers. miRNAs drive tissue regeneration, and their dysregulation may disrupt it. For this reason they represent a new direction in regenerative medicine strategies. In this chapter, we review the role of miRNAs in regenerative medicine with special emphasis on miRNA biogenesis.


Nature Communications | 2018

Direct conversion of injury-site myeloid cells to fibroblast-like cells of granulation tissue.

Mithun Sinha; Chandan K. Sen; Kanhaiya Singh; Amitava Das; Subhadip Ghatak; Brian Rhea; Britani N. Blackstone; Heather M. Powell; Savita Khanna; Sashwati Roy

Inflammation, following injury, induces cellular plasticity as an inherent component of physiological tissue repair. The dominant fate of wound macrophages is unclear and debated. Here we show that two-thirds of all granulation tissue fibroblasts, otherwise known to be of mesenchymal origin, are derived from myeloid cells which are likely to be wound macrophages. Conversion of myeloid to fibroblast-like cells is impaired in diabetic wounds. In cross-talk between keratinocytes and myeloid cells, miR-21 packaged in extracellular vesicles (EV) is required for cell conversion. EV from wound fluid of healing chronic wound patients is rich in miR-21 and causes cell conversion more effectively compared to that by fluid from non-healing patients. Impaired conversion in diabetic wound tissue is rescued by targeted nanoparticle-based delivery of miR-21 to macrophages. This work introduces a paradigm wherein myeloid cells are recognized as a major source of fibroblast-like cells in the granulation tissue.At the site of injury, macrophages exit their characteristic phenotype undergoing direct conversion to fibroblasts. Keratinocyte-derived miR-21, packaged in extracellular vesicles, enables such plasticity which accounts for the vast majority of all fibroblasts in the granulation tissue.

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Savita Khanna

The Ohio State University Wexner Medical Center

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Durba Pal

The Ohio State University Wexner Medical Center

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Amitava Das

The Ohio State University Wexner Medical Center

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Kanhaiya Singh

The Ohio State University Wexner Medical Center

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