Rational Construct of Extracellular Matrix Mimics via Peptide-Co-assembling Nanofibers for Efficient Bone Regeneration

Xiuhui Wang , Mingkui Shen , Mengze Ma , Huiying Zhang , Chaochen Shi , Han Lu , Wei He , Yazhou Chen

Advanced Fiber Materials ›› 2025, Vol. 7 ›› Issue (4) : 1093 -1110.

PDF
Advanced Fiber Materials ›› 2025, Vol. 7 ›› Issue (4) : 1093 -1110. DOI: 10.1007/s42765-025-00536-7
Research Article
research-article

Rational Construct of Extracellular Matrix Mimics via Peptide-Co-assembling Nanofibers for Efficient Bone Regeneration

Author information +
History +
PDF

Abstract

Ongoing extracellular matrix (ECM) mimics that dynamically adapt to cellular behaviors can more effectively regulate the fate of stem cells. In this study, a peptide nanofiber is developed by integrating integrin receptor-targeting peptides and heparan-sulfate proteoglycan-targeting peptides (KRSR) with self-assembling peptide fragments (FFF) to create ECM mimics. These nanofibers can dynamically self-assemble and co-assemble on the surface of bone marrow stem cells (BMSCs). Further investigations show that the co-assembly of these peptide nanofibers enhances cell proliferation and directs stem cell differentiation toward osteogenesis but not adipogenesis, thereby improving the quality of regenerated bone. We further explore the mechanisms of ECM mimics in regulating BMSCs’ differentiation through cell immunofluorescence staining and RNA sequencing analysis. The co-assembly of peptide nanofibers regulates BMSCs by interacting with cell membrane receptors, which triggers intracellular mechanotransduction and activates the mitogen activated protein kinase (MAPK) and phosphoinositide 3-kinase/protein kinase B (PI3K/AKT) signaling pathways. Consequently, a customized microenvironment is created to support BMSC functionality and tissue regeneration.

Keywords

Co-assembly / Nanofibers / Mechanotransduction / Bone regeneration

Cite this article

Download citation ▾
Xiuhui Wang, Mingkui Shen, Mengze Ma, Huiying Zhang, Chaochen Shi, Han Lu, Wei He, Yazhou Chen. Rational Construct of Extracellular Matrix Mimics via Peptide-Co-assembling Nanofibers for Efficient Bone Regeneration. Advanced Fiber Materials, 2025, 7(4): 1093-1110 DOI:10.1007/s42765-025-00536-7

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

HeZ, SunC, MaY, ChenX, WangY, ChenK, XieF, ZhangY, YuanY, LiuC. Rejuvenating aged bone repair through multihierarchy reactive oxygen species-regulated hydrogel. Adv Mater, 2024, 36e2306552

[2]

MarkusicDM, MartinoAT, PoradaCD, VandenDriesscheT. Immunology of gene and cell therapy. Mol Ther, 2020, 28691

[3]

SuannoG, GennaVG, MauriziE, DiehAA, GriffithM, FerrariG. Cell therapy in the cornea: the emerging role of microenvironment. Prog Retin Eye Res, 2024, 102101275

[4]

YangY, GaoX, ZhangY, LiS, WuH, XiaB, HaoY, YuB, GaoX, GengD, GuoL, QinM, WeiY, XueB, YangS, LiuQ, NieS, QinA, LiuJ, LuL, MaT, LuoZ, HuangJ. A time-scheduled oxygen modulation system facilitates bone regeneration by powering periosteal stem cells. Adv Fiber Mater, 2025, 120

[5]

GiobbeGG, CrowleyC, LuniC, CampinotiS, KhedrM, KretzschmarK, De SantisMM, ZambaitiE, MichielinF, MeranL, HuQ, van SonG, UrbaniL, ManfrediA, GiomoM, EatonS, CacchiarelliD, LiVSW, CleversH, BonfantiP, ElvassoreN, De CoppiP. Extracellular matrix hydrogel derived from decellularized tissues enables endodermal organoid culture. Nat Commun, 2019, 105658

[6]

HusseyGS, DzikiJL, BadylakSF. Extracellular matrix-based materials for regenerative medicine. Nat Rev Mater, 2018, 3159

[7]

YangK, YangJ, ManW, MengZ, YangC-Y, CaoZ, LiuJ, KimK, LiuY, YangS, GuoY, HeZ, MaC, WangG, WangX. N-cadherin-functionalized nanofiber hydrogel facilitates spinal cord injury repair by building a favorable niche for neural stem cells. Adv Fiber Mater, 2023, 51349

[8]

XiaoL, LiuH, WuS, HuangH, XieY, WeiR, LeiJ, LeiY, XueL, YanF, GengZ, CaiL. Fishnet-inspired 3D scaffold fabricated from mesh-like electrospun membranes promoted osteoporotic bone regeneration. Adv Fiber Mater, 2025, 772

[9]

ZhangZ, WangF, HuangX, SunH, XuJ, QuH, YanX, ShiW, TengW, JinX, ShaoZ, ZhangY, ZhaoS, WuY, YeZ, YuX. Engineered sensory nerve guides self-adaptive bone healing via NGF-TrkA signaling pathway. Adv Sci, 2023, 10e2206155

[10]

SaraswathibhatlaA, IndanaD, ChaudhuriO. Cell–extracellular matrix mechanotransduction in 3D. Nat Rev Mol Cell Biol, 2023, 24495

[11]

BakhshandehS. A designer matrix to study cell–ECM interactions. Nat Rev Bioeng, 2023, 1311

[12]

ZhangW, HouY, YinS, MiaoQ, LeeK, ZhouX, WangY. Advanced gene nanocarriers/scaffolds in nonviral-mediated delivery system for tissue regeneration and repair. J Nanobiotechnol, 2024, 22376

[13]

LiuK, LiL, ChenJ, LiY, WenW, LuL, LiL, LiH, LiuM, ZhouC, LuoB. Bone ECM-like 3D printing scaffold with liquid crystalline and viscoelastic microenvironment for bone regeneration. ACS Nano, 2022, 1621020

[14]

WangZ, LiuS, HanM, XuJ, QinM, YangQ, ZengG, LongM, LiT, YinJ, YuL, HuangW, WangL, WuY. 3D Printing-electrospinning hybrid nanofibrous scaffold as LEGO-like bricks for modular assembling skeletal muscle-on-a-chip functional platform. Adv Fiber Mater, 2024, 61521

[15]

LiuJ, CuiT, XuX, DuY, WangL, ChenS, PangJ. Robust alcohol soluble polyurethane/chitosan/silk sericin (APU/CS/SS) nanofiber scaffolds toward artificial skin extracellular matrices via microfluidic blow-spinning. Adv Fiber Mater, 2023, 5349

[16]

SunR, WangM, ZengT, ChenH, YoshitomiT, TakeguchiM, KawazoeN, YangY, ChenG. Scaffolds functionalized with matrix metalloproteinase-responsive release of miRNA for synergistic magnetic hyperthermia and sensitizing chemotherapy of drug-tolerant breast cancer. Bioact Mater, 2025, 44205

[17]

KoushikTM, MillerCM, AntunesE. Bone tissue engineering scaffolds: function of multi-material hierarchically structured scaffolds. Adv Healthc Mater, 2023, 12e2202766

[18]

Vilaça-FariaH, NoroJ, ReisRL, PirracoRP. Extracellular matrix-derived materials for tissue engineering and regenerative medicine: a journey from isolation to characterization and application. Bioact Mater, 2024, 34494

[19]

ChenR, WangY, YuC, ZhangX, WangY, YuT, WuT. Bioactive glass-reinforced hybrid microfibrous spheres promote bone defect repair via stem cell delivery. Adv Fiber Mater, 2025, 7240

[20]

YaoZ, ChenZ, HeX, WeiY, QianJ, ZongQ, HeS, SongL, MaL, LinS, LiL, XueL, FuSN, ZhangJ, LiY, WangD. Bioactive MgO/MgCO3/polycaprolactone multi-gradient fibers facilitate peripheral nerve regeneration by regulating Schwann cell function and activating wingless/integrase-1 signaling. Adv Fiber Mater, 2025, 7315

[21]

ChenY, ZhangQ, YangS, LiG, ShiC, HuX, AsahinaS, AsanoN, ZhangY. Formulate adaptive biphasic scaffold via sequential protein-instructed peptide co-assembly. Adv Sci, 2024, 112401478

[22]

WangLD, WagersAJ. Dynamic niches in the origination and differentiation of haematopoietic stem cells. Nat Rev Mol Cell Biol, 2011, 12643

[23]

ChenY, LeeK, KawazoeN, YangY, ChenG. ECM scaffolds mimicking extracellular matrices of endochondral ossification for the regulation of mesenchymal stem cell differentiation. Acta Biomater, 2020, 114158

[24]

SolimanBG, LindbergGCJ, JungstT, HooperGJ, GrollJ, WoodfieldTBF, LimKS. Stepwise control of crosslinking in a one-pot system for bioprinting of low-density bioinks. Adv Healthc Mater, 2020, 9e1901544

[25]

LiuH, ChansoriaP, DelrotP, AngelidakisE, RizzoR, RütscheD, ApplegateLA, LoterieD, Zenobi-WongM. Filamented light (flight) biofabrication of highly aligned tissue-engineered constructs. Adv Mater, 2022, 34e2204301

[26]

ZauchnerD, MüllerMZ, HorrerM, BissigL, ZhaoF, FischP, LeeSS, Zenobi-WongM, MüllerR, QinX-H. Synthetic biodegradable microporous hydrogels for in vitro 3D culture of functional human bone cell networks. Nat Commun, 2024, 155027

[27]

WuS, ZhangH, WangS, SunJ, HuY, LiuH, LiuJ, ChenX, ZhouF, BaiL, WangX, SuJ. Ultrasound-triggered in situ gelation with ROS-controlled drug release for cartilage repair. Mater Horiz, 2023, 103507

[28]

Linan WangWH, ZhangQ, QiaoH, LinM, ShenZ, PangX, SuiK. Hierarchical self-assembly of injectable alginate supramolecular nanofibril hydrogels for hemostasis in vivo. Adv Fiber Mater, 2024, 6489

[29]

FuK, WuH, SuZ. Self-assembling peptide-based hydrogels: fabrication, properties, and applications. Biotechnol Adv, 2021, 49107752

[30]

Corbi-VergeC, GartonM, NimS, KimPM. Strategies to develop inhibitors of motif-mediated protein-protein interactions as drug leads. Annu Rev Pharmacol Toxicol, 2017, 5739

[31]

ZhangX, WuY, LinJ, LuS, LuX, ChengA, ChenH, ZhangW, LuanX. Insights into therapeutic peptides in the cancer-immunity cycle: update and challenges. Acta Pharm Sin B, 2024, 143818

[32]

LinL, ChiJ, YanY, LuoR, FengX, ZhengY, XianD, LiX, QuanG, LiuD, WuC, LuC, PanX. Membrane-disruptive peptides/peptidomimetics-based therapeutics: promising systems to combat bacteria and cancer in the drug-resistant era. Acta Pharm Sin B, 2021, 112609

[33]

YuW, GuoX, LiQ, LiX, WeiY, ShaoC, ZhangL, WangJ, ShanA. Revolutionizing antimicrobial biomaterials: integrating an enzyme degradation-resistant sequence into self-assembled nanosystems to overcome stability limitations of peptide-based drugs. Adv Fiber Mater, 2024, 61188

[34]

BabiiO, AfoninS, GarmanchukLV, NikulinaVV, NikolaienkoTV, StorozhukOV, ShelestDV, DasyukevichOI, OstapchenkoLI, IurchenkoV, ZozulyaS, UlrichAS, KomarovIV. Direct photocontrol of peptidomimetics: an alternative to oxygen-dependent photodynamic cancer therapy. Angew Chem Int Ed Engl, 2016, 555493

[35]

SongJ, ShaoL, YuH, MengC, LiG. Self-assembly of sulfate-containing peptides sequesters VEGF for inhibiting cancer cell invasion. Biomacromol, 2024, 253087

[36]

WangY, YiZ, GuoJ, LiaoS, LiZ, XuS, YinB, LiuY, FengY, RongQ, LiuX, SongG, ZhangX-B, TanW. In vivo ultrasound-induced luminescence molecular imaging. Nat Photonics, 2024, 18334

[37]

ZhangX, LiuX, YuH, ShenS, ZhiJ, GaoZ, XinJ, SongJ, ShaoL, MengC, AnF, HuoT, LiuS, ZhangY, XuL, LiG. Bone analysis using an aggregation-induced emission-active iridium complex. Aggregate, 2023, 4e381

[38]

SongBL, WangJQ, ZhangGX, YiNB, ZhangYJ, ZhouL, GuanYH, ZhangXH, ZhengWF, QiaoZY, WangH. A coupling-induced assembly strategy for constructing artificial shell on mitochondria in living cells. Angew Chem Int Ed, 2024, 63e202411725

[39]

ZhangK, YangPP, HePP, WenSF, ZouXR, FanY, ChenZM, CaoH, YangZ, YueK, ZhangX, ZhangH, WangL, WangH. Peptide-based nanoparticles mimic fibrillogenesis of laminin in tumor vessels for precise embolization. ACS Nano, 2020, 147170

[40]

SunX, GaoW, LiuY, WangY, WeiC, ShanL, WangT, TianX, BaiJ. pH-responsive morphology shifting peptides coloaded with paclitaxel and sorafenib inhibit angiogenesis and tumor growth. Mater Des, 2024, 238112619

[41]

GuoJ, WangF, HuangY, HeH, TanW, YiM, EgelmanEH, XuB. Cell spheroid creation by transcytotic intercellular gelation. Nat Nanotechnol, 2023, 181094

[42]

GuanT, LiJ, ChenC, LiuY. Self-assembling peptide-based hydrogels for wound tissue repair. Adv Sci, 2022, 9e2104165

[43]

AcarH, SrivastavaS, ChungEJ, SchnorenbergMR, BarrettJC, LaBelleJL, TirrellM. Self-assembling peptide-based building blocks in medical applications. Adv Drug Deliv Rev, 2017, 65: 110-111

[44]

HuX, RoySR, JinC, LiG, ZhangQ, AsanoN, AsahinaS, KajiwaraT, TakaharaA, FengB, AokiK, XuC, ZhangY. Control cell migration by engineering integrin ligand assembly. Nat Commun, 2022, 135002

[45]

SiddiquiZ, SarkarB, KimKK, KumarA, PaulR, MahajanA, GrasmanJM, YangJ, KumarVA. Self-assembling peptide hydrogels facilitate vascularization in two-component scaffolds. Chem Eng J, 2021, 422130145

[46]

ChengTY, ChenMH, ChangWH, HuangMY, WangTW. Neural stem cells encapsulated in a functionalized self-assembling peptide hydrogel for brain tissue engineering. Biomaterials, 2005, 201334

[47]

ChenJ, ZouX. Self-assemble peptide biomaterials and their biomedical applications. Bioact Mater, 2019, 4120

[48]

HuangX, LiT, JiangX, WangZ, WangM, WuX, LiJ, ShiJ. Co-assembled supramolecular hydrogel of salvianolic acid B and a phosphopeptide for enhanced wound healing. ACS Appl Mater Interfaces, 2023, 1545606

[49]

Xiaojiao LiuXY, OuYangQ, OliveiraAL, YanL, ZhangY. Nanofiber scaffold-based tissue engineering for the treatment of acute liver failure. Adv Fiber Mater, 2024, 6686

[50]

LiG, HuX, NieP, MangD, JiaoS, ZhangS, RoySR, YukawaS, AsahinaS, SugasawaH, CortesW, ZhouZ, ZhangY. Lipid-raft-targeted molecular self-assembly inactivates YAP to treat ovarian cancer. Nano Lett, 2021, 21747

[51]

van ZundertGCP, RodriguesJPGLM, TrelletM, SchmitzC, KastritisPL, KaracaE, MelquiondASJ, van DijkM, de VriesSJ, BonvinAMJJ. The HADDOCK2.2 web server: user-friendly integrative modeling of biomolecular complexes. J Mol Biol, 2016, 428720

[52]

MillerBRIII, McGeeTDJr, SwailsJM, HomeyerN, GohlkeH, RoitbergAE. MMPBSA.py: an efficient program for end-state free energy calculations. J Chem Theory Comput, 2012, 83314

[53]

LiS, WangY, JiangH, BaiY, ChenT, ChenM, MaM, YangS, WuY, ShiC, WangF, ChenY. Display of CCL21 on cancer cell membrane through genetic modification using a pH low insertion peptide. Int J Biol Macromol, 2023, 240124324

[54]

MangD, RoySR, ZhangQ, HuX, ZhangY. Heparan sulfate-instructed self-assembly selectively inhibits cancer cell migration. ACS Appl Mater Interfaces, 2021, 1317236

RIGHTS & PERMISSIONS

Donghua University, Shanghai, China

AI Summary AI Mindmap
PDF

212

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/