Aishik Chakraborty, Wei Luo, Yasmeen Shamiya, Alap Ali Zahid, Michael Roman Grynyshyn, Nicholas A. Bainbridge, Yihong Liu, Lorena Veliz, François Lagugné-Labarthet, Lijia Liu, Douglas Hamilton and Arghya Paul*,
{"title":"表面工程WS2纳米杂化物在生物医学上的应用。","authors":"Aishik Chakraborty, Wei Luo, Yasmeen Shamiya, Alap Ali Zahid, Michael Roman Grynyshyn, Nicholas A. Bainbridge, Yihong Liu, Lorena Veliz, François Lagugné-Labarthet, Lijia Liu, Douglas Hamilton and Arghya Paul*, ","doi":"10.1021/acsami.5c06846","DOIUrl":null,"url":null,"abstract":"<p >Transition metal dichalcogenides (TMDs) nanosheets, known for their distinctive structural and physicochemical characteristics, have become valuable tools in various biomedical fields, including drug delivery and tissue engineering. Here, we have developed a facile approach to synthesize surface-modified TMD nanosheets that exhibit several smart properties, such as near-infrared (NIR) light-responsiveness, ultrasound-responsiveness, and bactericidal behavior. The surface modification was performed using a redox reaction, which decorated liquid-exfoliated, 2D, ultrathin nanosheets of tungsten disulfide (WS<sub>2</sub>) with silver nanospheres. TEM and AFM images, along with analytical techniques such as XPS, FTIR, powder-XRD, UV–vis, and Confocal Raman spectroscopy, confirmed the binding of silver to the nanosheets, resulting in heterostructured nanohybrids (nWS<sub>2</sub>). Additional structural information about this surface-engineered material was obtained using synchrotron radiation-based instrumentation techniques, including X-ray absorption fine structure spectroscopy (XAFS). Moreover, we demonstrate that nWS<sub>2</sub> nanohybrids are capable of inhibiting biofilms of methicillin-resistant <i>Staphylococcus aureus</i> (MRSA), a widely prevalent causative agent of healthcare-associated bacterial infections. The nanohybrids can also convert incident near-infrared (NIR) light to thermal energy and exhibit enhanced bactericidal potential. 1 mg/mL of nWS<sub>2</sub> was able to increase suspension temperatures by 30 °C. A colony forming unit assay with NIR-exposed nWS<sub>2</sub> showed antibiotic-free prevention of MRSA growth. Next, we develop a nWS<sub>2</sub>-integrated polymeric hydrogel system capable of 3D-biopriting hydrogel structures with user-defined geometry for tissue engineering applications. Finally, we evaluate the <i>in vitro</i> cytocompatibility and <i>in vivo</i> biocompatibility of this nanocomposite hydrogel platform by subcutaneously implanting it in immunocompetent mice. Histological staining revealed excellent host-tissue integration, vasculogenesis, and a minimal immune response around the implant’s periphery. Taken together, we envision surface-engineered WS<sub>2</sub> nanosheets, alone or in combination with hydrogels, as a high-performance multifunctional biomaterial for implications in biomedicine.</p>","PeriodicalId":5,"journal":{"name":"ACS Applied Materials & Interfaces","volume":"17 29","pages":"41649–41665"},"PeriodicalIF":8.2000,"publicationDate":"2025-07-09","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Surface-Engineered WS2 Nanohybrids for Implications in Biomedicine\",\"authors\":\"Aishik Chakraborty, Wei Luo, Yasmeen Shamiya, Alap Ali Zahid, Michael Roman Grynyshyn, Nicholas A. Bainbridge, Yihong Liu, Lorena Veliz, François Lagugné-Labarthet, Lijia Liu, Douglas Hamilton and Arghya Paul*, \",\"doi\":\"10.1021/acsami.5c06846\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p >Transition metal dichalcogenides (TMDs) nanosheets, known for their distinctive structural and physicochemical characteristics, have become valuable tools in various biomedical fields, including drug delivery and tissue engineering. Here, we have developed a facile approach to synthesize surface-modified TMD nanosheets that exhibit several smart properties, such as near-infrared (NIR) light-responsiveness, ultrasound-responsiveness, and bactericidal behavior. The surface modification was performed using a redox reaction, which decorated liquid-exfoliated, 2D, ultrathin nanosheets of tungsten disulfide (WS<sub>2</sub>) with silver nanospheres. TEM and AFM images, along with analytical techniques such as XPS, FTIR, powder-XRD, UV–vis, and Confocal Raman spectroscopy, confirmed the binding of silver to the nanosheets, resulting in heterostructured nanohybrids (nWS<sub>2</sub>). Additional structural information about this surface-engineered material was obtained using synchrotron radiation-based instrumentation techniques, including X-ray absorption fine structure spectroscopy (XAFS). Moreover, we demonstrate that nWS<sub>2</sub> nanohybrids are capable of inhibiting biofilms of methicillin-resistant <i>Staphylococcus aureus</i> (MRSA), a widely prevalent causative agent of healthcare-associated bacterial infections. The nanohybrids can also convert incident near-infrared (NIR) light to thermal energy and exhibit enhanced bactericidal potential. 1 mg/mL of nWS<sub>2</sub> was able to increase suspension temperatures by 30 °C. A colony forming unit assay with NIR-exposed nWS<sub>2</sub> showed antibiotic-free prevention of MRSA growth. Next, we develop a nWS<sub>2</sub>-integrated polymeric hydrogel system capable of 3D-biopriting hydrogel structures with user-defined geometry for tissue engineering applications. Finally, we evaluate the <i>in vitro</i> cytocompatibility and <i>in vivo</i> biocompatibility of this nanocomposite hydrogel platform by subcutaneously implanting it in immunocompetent mice. Histological staining revealed excellent host-tissue integration, vasculogenesis, and a minimal immune response around the implant’s periphery. 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Surface-Engineered WS2 Nanohybrids for Implications in Biomedicine
Transition metal dichalcogenides (TMDs) nanosheets, known for their distinctive structural and physicochemical characteristics, have become valuable tools in various biomedical fields, including drug delivery and tissue engineering. Here, we have developed a facile approach to synthesize surface-modified TMD nanosheets that exhibit several smart properties, such as near-infrared (NIR) light-responsiveness, ultrasound-responsiveness, and bactericidal behavior. The surface modification was performed using a redox reaction, which decorated liquid-exfoliated, 2D, ultrathin nanosheets of tungsten disulfide (WS2) with silver nanospheres. TEM and AFM images, along with analytical techniques such as XPS, FTIR, powder-XRD, UV–vis, and Confocal Raman spectroscopy, confirmed the binding of silver to the nanosheets, resulting in heterostructured nanohybrids (nWS2). Additional structural information about this surface-engineered material was obtained using synchrotron radiation-based instrumentation techniques, including X-ray absorption fine structure spectroscopy (XAFS). Moreover, we demonstrate that nWS2 nanohybrids are capable of inhibiting biofilms of methicillin-resistant Staphylococcus aureus (MRSA), a widely prevalent causative agent of healthcare-associated bacterial infections. The nanohybrids can also convert incident near-infrared (NIR) light to thermal energy and exhibit enhanced bactericidal potential. 1 mg/mL of nWS2 was able to increase suspension temperatures by 30 °C. A colony forming unit assay with NIR-exposed nWS2 showed antibiotic-free prevention of MRSA growth. Next, we develop a nWS2-integrated polymeric hydrogel system capable of 3D-biopriting hydrogel structures with user-defined geometry for tissue engineering applications. Finally, we evaluate the in vitro cytocompatibility and in vivo biocompatibility of this nanocomposite hydrogel platform by subcutaneously implanting it in immunocompetent mice. Histological staining revealed excellent host-tissue integration, vasculogenesis, and a minimal immune response around the implant’s periphery. Taken together, we envision surface-engineered WS2 nanosheets, alone or in combination with hydrogels, as a high-performance multifunctional biomaterial for implications in biomedicine.
期刊介绍:
ACS Applied Materials & Interfaces is a leading interdisciplinary journal that brings together chemists, engineers, physicists, and biologists to explore the development and utilization of newly-discovered materials and interfacial processes for specific applications. Our journal has experienced remarkable growth since its establishment in 2009, both in terms of the number of articles published and the impact of the research showcased. We are proud to foster a truly global community, with the majority of published articles originating from outside the United States, reflecting the rapid growth of applied research worldwide.