2019
DOI: 10.1002/advs.201802077
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Cytocompatible, Injectable, and Electroconductive Soft Adhesives with Hybrid Covalent/Noncovalent Dynamic Network

Abstract: Synthetic conductive biopolymers have gained increasing interest in tissue engineering, as they can provide a chemically defined electroconductive and biomimetic microenvironment for cells. In addition to low cytotoxicity and high biocompatibility, injectability and adhesiveness are important for many biomedical applications but have proven to be very challenging. Recent results show that fascinating material properties can be realized with a bioinspired hybrid network, especially through the synergy between i… Show more

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Cited by 90 publications
(87 citation statements)
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“…These bioadhesives can be conveniently applied through injection and have sufficient adhesive strength as well as low toxicity. [ 1,2,8–10 ] However, the time between wound closure and complete healing is quite long—typically several days to weeks, [ 3 ] and during this post‐wound closure time, the closed wounds still need to be cared for to facilitate better wound healing. For example, after a wound is closed, it may need further handling, such as changing or adding medicines, according to the state of healing, which requires painlessly changing or removing the applied bioadhesives.…”
Section: Introductionmentioning
confidence: 99%
“…These bioadhesives can be conveniently applied through injection and have sufficient adhesive strength as well as low toxicity. [ 1,2,8–10 ] However, the time between wound closure and complete healing is quite long—typically several days to weeks, [ 3 ] and during this post‐wound closure time, the closed wounds still need to be cared for to facilitate better wound healing. For example, after a wound is closed, it may need further handling, such as changing or adding medicines, according to the state of healing, which requires painlessly changing or removing the applied bioadhesives.…”
Section: Introductionmentioning
confidence: 99%
“…The low water contact angle of the (CCS‐R/OALG‐D) 15 film is 33.9° in Figure 3a, which represents its so high wettability that it is easier to spread water on the surface of the film. Besides making the damaged parts swell, water provides a certain fluidity to the damaged sections of the film, re‐activating the dynamic reversible interaction including Schiff base covalent bond [ 22 ] of the (CCS‐R/OALG‐D) 15 film, electrostatic interaction of –COO − and –NH 4 + as well as hydrogen bond, and these bridged bonds of the contact parts of the film can restore the original structure (Figure 1b). Consequently, the self‐healing ability of the (CCS‐R/OALG‐D) 15 film could be applied for wound healing, issue engineering repair and regeneration besides the enhancement of its service lifetime and reliability.…”
Section: Resultsmentioning
confidence: 99%
“…Recently, the magnetic hydrogels as injectable systems have displayed great potential for tissue repair and magnetic drug targeting. Various kinds of cells and molecules can be encapsulated homogeneously into the magnetic hydrogels and then targeted to the pathological sites with minimal invasiveness (Wu et al, 2018;Chen X. et al, 2019b;Shi et al, 2019;Wu H. et al, 2019;Xu et al, 2019). Several polymers, including ionic-response polymers (e.g., sodium alginate), natural biocompatible polymers (e.g., chitosan), and synthetic polymers (e.g., polyacrylic acid), conjugated with the magnetic particles have been used to fabricate the injectable hydrogels for therapeutic applications (Jalili et al, 2017;Hu et al, 2018;Amini-Fazl et al, 2019).…”
Section: Injectable Magnetic Hydrogel's Application In Tissue Engineementioning
confidence: 99%