Correction to “Self-assembly of PEG–PPS polymers and LL-37 peptide nanomicelles improves the oxidative microenvironment and promotes angiogenesis to facilitate chronic wound healing”

IF 6.1 2区 医学 Q1 ENGINEERING, BIOMEDICAL
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引用次数: 0

Abstract

Shi R, Qiao J, Sun Q, Hou B, Li B, Zheng J, Zhang Z, Peng Z, Zhou J, Shen B, Deng J, Zhang X. Self-assembly of PEG–PPS polymers and LL-37 peptide nanomicelles improves the oxidative microenvironment and promotes angiogenesis to facilitate chronic wound healing. Bioeng Transl Med. 2023;9(2):e10619. doi:10.1002/btm2.10619

The authors regret some errors have been found in Figure 5, Figure S12, and Figure S15.

In Figure 5, due to the misuse of wound images of the LL-37@PEG–PPS group on day 9, there was a duplication with the wound images of the PEG–PPS group on day 11.

In Figure S12a, due to misuse of images, there was partial overlap of the 0 h images between the control group and PEG–PPS group.

In Figure S15a, unintentional misuse of the in vivo biodistribution image of FITC-LL-37@PEG–PPS in before injection group, which leads to an overlapped with that on day 4.

Abstract Image

更正 "PEG-PPS 聚合物和 LL-37 肽纳米微孔的自组装可改善氧化微环境并促进血管生成,从而促进慢性伤口愈合"
Shi R、Qiao J、Sun Q、Hou B、Li B、Zheng J、Zhang Z、Peng Z、Zhou J、Shen B、Deng J、Zhang X. PEG-PPS 聚合物和 LL-37 肽纳米小室的自组装改善了氧化微环境并促进了血管生成,从而促进了慢性伤口愈合。Bioeng Transl Med.2023;9(2):e10619. doi:10.1002/btm2.10619作者对图 5、图 S12 和图 S15 中发现的一些错误表示遗憾。在图 5 中,由于误用了第 9 天 LL-37@PEG-PPS 组的伤口图像,导致与第 11 天 PEG-PPS 组的伤口图像重复。图 S12a 中,由于误用图像,对照组和 PEG-PPS 组的 0 h 图像有部分重叠。图 S15a 中,注射前组的 FITC-LL-37@PEG-PPS 体内生物分布图像被无意误用,导致与第 4 天的图像重叠。
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来源期刊
Bioengineering & Translational Medicine
Bioengineering & Translational Medicine Pharmacology, Toxicology and Pharmaceutics-Pharmaceutical Science
CiteScore
8.40
自引率
4.10%
发文量
150
审稿时长
12 weeks
期刊介绍: Bioengineering & Translational Medicine, an official, peer-reviewed online open-access journal of the American Institute of Chemical Engineers (AIChE) and the Society for Biological Engineering (SBE), focuses on how chemical and biological engineering approaches drive innovative technologies and solutions that impact clinical practice and commercial healthcare products.
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