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Multifunctional BPs/MT@PLGA-ALE Nanospheres for Treatment of Osteoporotic Fracture with Near-Infrared Irradiation

  • Kai Zheng
  • , Jiaxiang Bai
  • , Wanling Chen
  • , Yaozeng Xu
  • , Huilin Yang
  • , Wei Li
  • , Penghui Li*
  • , Liping Tong*
  • , Huaiyu Wang*
  • , Paul K. Chu
  • , Dechun Geng*
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

Osteoporotic fracture, which is a clinical complication of osteoporosis featured with the imbalance of bone homeostasis. Non-surgical intervention is frequently required post-operatively to ameliorate the fracture healing. Nevertheless, current non-surgical therapies are mostly performed in a non-targeted manner without giving enough consideration to the pathological characteristics of osteoporosis. Therefore, it is highly desirable to develop an optimal strategy for promoting fracture healing under osteoporotic conditions. In this study, a multifunctional therapeutic nanoplatform is designed to work in conjunction with near-infrared irradiation. Specifically, poly (lactic-co-glycolic acid) (PLGA) is functionalized with alendronate (ALE) and black phosphorus nanosheets (BPs) together with melatonin (MT) molecules are encapsulated by PLGA-ALE to produce the multifunctional BPs/MT@PLGA-ALE nanospheres. In this structure, BPs degrade gradually and deliver mild photothermal effects to facilitate bone regeneration, whereas MT has the dual-capability of suppressing osteoclastogenesis and promoting osteogenesis. Moreover, ALE endows the nanoplatform with the reliable bone-targeting capacity to improve the therapeutic effects. The combination of BPs/MT@PLGA-ALE nanospheres and photothermal therapy significantly improve post-surgical healing of osteoporotic fracture by modulating the tumor necrosis factor and cell death-related signaling pathways. This study reveals a promising strategy to treat osteoporotic fracture and broadens the application of nanomaterials in the biomedical field.
Original languageEnglish
Article number2214126
JournalAdvanced Functional Materials
Volume33
Issue number18
Online published28 Feb 2023
DOIs
Publication statusPublished - 2 May 2023

Funding

K. Z., J. B., and W. C. contributed equally to this work. This work was financially supported by the National Natural Science Foundation of China (82072425, 82072498, 31922040, 81903057, 82172397, and 82272157), Shenzhen Science and Technology Research Funding (JCYJ20180507182637685 and JSGG20200225152648408), Natural Science Foundation of Jiangsu Province (BE2021650), Jiangsu Medical Research Project (ZD2022021), Youth Innovation Promotion Association of Chinese Academy of Sciences (2020353), Special Project of Diagnosis and 1372 Treatment Technology for Key Clinical Diseases in Suzhou (LCZX202003), Priority Academic Program Development of Jiangsu Higher Education Institutions (PAPD), City University of Hong Kong Donation Research Grant (DON-RMG 9229021), City University of Hong Kong Strategic Research Grant (SRG 7005505), City University of Hong Kong Donation Grant (9220061), Hong Kong PDFS-RGC Postdoctoral Fellowship Scheme (PDFS2122-1S08 and CityU 9061014), Hong Kong Health and Medical Research Fund (2120972 and CityU 9211320), and Key Laboratory of Orthopaedics of Suzhou (SZS2022017).

Research Keywords

  • bone homeostasis
  • bone targeting
  • multifunctional nanospheres
  • near-infrared irradiation
  • osteoporotic fractures
  • BLACK PHOSPHORUS
  • BONE
  • BIOCOMPATIBILITY
  • NANOPARTICLES
  • MELATONIN

RGC Funding Information

  • RGC-funded

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