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3D‐Printed Functional Hydrogel by DNA‐Induced Biomineralization for Accelerated Diabetic Wound Healing

Chronic wounds in diabetic patients are challenging because their prolonged inflammation makes healing difficult, thus burdening patients, society, and health care systems. Customized dressing materials are needed to effectively treat such wounds that vary in shape and depth. The continuous developm...

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Autores principales: Kim, Nahyun, Lee, Hyun, Han, Ginam, Kang, Minho, Park, Sinwoo, Kim, Dong Eung, Lee, Minyoung, Kim, Moon‐Jo, Na, Yuhyun, Oh, SeKwon, Bang, Seo‐Jun, Jang, Tae‐Sik, Kim, Hyoun‐Ee, Park, Jungwon, Shin, Su Ryon, Jung, Hyun‐Do
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10265106/
https://www.ncbi.nlm.nih.gov/pubmed/37076933
http://dx.doi.org/10.1002/advs.202300816
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author Kim, Nahyun
Lee, Hyun
Han, Ginam
Kang, Minho
Park, Sinwoo
Kim, Dong Eung
Lee, Minyoung
Kim, Moon‐Jo
Na, Yuhyun
Oh, SeKwon
Bang, Seo‐Jun
Jang, Tae‐Sik
Kim, Hyoun‐Ee
Park, Jungwon
Shin, Su Ryon
Jung, Hyun‐Do
author_facet Kim, Nahyun
Lee, Hyun
Han, Ginam
Kang, Minho
Park, Sinwoo
Kim, Dong Eung
Lee, Minyoung
Kim, Moon‐Jo
Na, Yuhyun
Oh, SeKwon
Bang, Seo‐Jun
Jang, Tae‐Sik
Kim, Hyoun‐Ee
Park, Jungwon
Shin, Su Ryon
Jung, Hyun‐Do
author_sort Kim, Nahyun
collection PubMed
description Chronic wounds in diabetic patients are challenging because their prolonged inflammation makes healing difficult, thus burdening patients, society, and health care systems. Customized dressing materials are needed to effectively treat such wounds that vary in shape and depth. The continuous development of 3D‐printing technology along with artificial intelligence has increased the precision, versatility, and compatibility of various materials, thus providing the considerable potential to meet the abovementioned needs. Herein, functional 3D‐printing inks comprising DNA from salmon sperm and DNA‐induced biosilica inspired by marine sponges, are developed for the machine learning‐based 3D‐printing of wound dressings. The DNA and biomineralized silica are incorporated into hydrogel inks in a fast, facile manner. The 3D‐printed wound dressing thus generates provided appropriate porosity, characterized by effective exudate and blood absorption at wound sites, and mechanical tunability indicated by good shape fidelity and printability during optimized 3D printing. Moreover, the DNA and biomineralized silica act as nanotherapeutics, enhancing the biological activity of the dressings in terms of reactive oxygen species scavenging, angiogenesis, and anti‐inflammation activity, thereby accelerating acute and diabetic wound healing. These bioinspired 3D‐printed hydrogels produce using a DNA‐induced biomineralization strategy are an excellent functional platform for clinical applications in acute and chronic wound repair.
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spelling pubmed-102651062023-06-15 3D‐Printed Functional Hydrogel by DNA‐Induced Biomineralization for Accelerated Diabetic Wound Healing Kim, Nahyun Lee, Hyun Han, Ginam Kang, Minho Park, Sinwoo Kim, Dong Eung Lee, Minyoung Kim, Moon‐Jo Na, Yuhyun Oh, SeKwon Bang, Seo‐Jun Jang, Tae‐Sik Kim, Hyoun‐Ee Park, Jungwon Shin, Su Ryon Jung, Hyun‐Do Adv Sci (Weinh) Research Articles Chronic wounds in diabetic patients are challenging because their prolonged inflammation makes healing difficult, thus burdening patients, society, and health care systems. Customized dressing materials are needed to effectively treat such wounds that vary in shape and depth. The continuous development of 3D‐printing technology along with artificial intelligence has increased the precision, versatility, and compatibility of various materials, thus providing the considerable potential to meet the abovementioned needs. Herein, functional 3D‐printing inks comprising DNA from salmon sperm and DNA‐induced biosilica inspired by marine sponges, are developed for the machine learning‐based 3D‐printing of wound dressings. The DNA and biomineralized silica are incorporated into hydrogel inks in a fast, facile manner. The 3D‐printed wound dressing thus generates provided appropriate porosity, characterized by effective exudate and blood absorption at wound sites, and mechanical tunability indicated by good shape fidelity and printability during optimized 3D printing. Moreover, the DNA and biomineralized silica act as nanotherapeutics, enhancing the biological activity of the dressings in terms of reactive oxygen species scavenging, angiogenesis, and anti‐inflammation activity, thereby accelerating acute and diabetic wound healing. These bioinspired 3D‐printed hydrogels produce using a DNA‐induced biomineralization strategy are an excellent functional platform for clinical applications in acute and chronic wound repair. John Wiley and Sons Inc. 2023-04-19 /pmc/articles/PMC10265106/ /pubmed/37076933 http://dx.doi.org/10.1002/advs.202300816 Text en © 2023 The Authors. Advanced Science published by Wiley‐VCH GmbH https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Kim, Nahyun
Lee, Hyun
Han, Ginam
Kang, Minho
Park, Sinwoo
Kim, Dong Eung
Lee, Minyoung
Kim, Moon‐Jo
Na, Yuhyun
Oh, SeKwon
Bang, Seo‐Jun
Jang, Tae‐Sik
Kim, Hyoun‐Ee
Park, Jungwon
Shin, Su Ryon
Jung, Hyun‐Do
3D‐Printed Functional Hydrogel by DNA‐Induced Biomineralization for Accelerated Diabetic Wound Healing
title 3D‐Printed Functional Hydrogel by DNA‐Induced Biomineralization for Accelerated Diabetic Wound Healing
title_full 3D‐Printed Functional Hydrogel by DNA‐Induced Biomineralization for Accelerated Diabetic Wound Healing
title_fullStr 3D‐Printed Functional Hydrogel by DNA‐Induced Biomineralization for Accelerated Diabetic Wound Healing
title_full_unstemmed 3D‐Printed Functional Hydrogel by DNA‐Induced Biomineralization for Accelerated Diabetic Wound Healing
title_short 3D‐Printed Functional Hydrogel by DNA‐Induced Biomineralization for Accelerated Diabetic Wound Healing
title_sort 3d‐printed functional hydrogel by dna‐induced biomineralization for accelerated diabetic wound healing
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10265106/
https://www.ncbi.nlm.nih.gov/pubmed/37076933
http://dx.doi.org/10.1002/advs.202300816
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