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文献清单:JFB 期刊2026年第二季度Editor’s Choice Papers 合集| MDPI Journal of Functional Biomaterials |
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期刊名:Journal of Functional Biomaterials
期刊主页:https://www.mdpi.com/journal/jfb
本期文献清单为您精选JFB 期刊2026年第二季度editor’s choice papers 合集. 我们相信,这些研究将成为该领域研究者的重要资源。期刊所有文章均为开放获取,您可以免费且无限制地阅读全部出版内容。
1. Vitreous Substitutes in Vitreoretinal Surgery: From Native Vitreous Physiology to Bioengineered Experimental Replacements
玻璃体视网膜手术中的玻璃体替代物:从天然玻璃体生理到生物工程实验性替代品
http://www.mdpi.com/2079-4983/17/6/301
Avitabile, A.; Cannizzaro, L.; Rusciano, D. Vitreous Substitutes in Vitreoretinal Surgery: From Native Vitreous Physiology to Bioengineered Experimental Replacements. J. Funct. Biomater. 2026, 17, 301.
2. Vein Graft Preservation During Coronary Artery Bypass Graft Surgery: Operative Techniques, Biomaterials and Advances from Tissue Engineering
冠状动脉旁路移植术中静脉移植物的保存:手术技巧、生物材料和组织工程进展
http://www.mdpi.com/2079-4983/17/6/305
Ferraresi, B.; Nenna, A.; Jawabra, M.; Corrado, D.; Barberi, F.; Dominici, C.; Casali, G.; Barbieri, L.; Tumminello, G.; Carugo, S.; et al. Vein Graft Preservation During Coronary Artery Bypass Graft Surgery: Operative Techniques, Biomaterials and Advances from Tissue Engineering. J. Funct. Biomater. 2026, 17, 305.
3. Tumor-Targeted Delivery Therapy Based on PLGA Nanoparticles
基于PLGA纳米粒子的肿瘤靶向递送疗法
http://www.mdpi.com/2079-4983/17/5/207
Wu, F.; Gao, Y.; Chi, Y.; Wang, D.; Zhang, S.; Cheung, O.; Zhao, K.; Lu, H.; Chen, Q.; Chen, Y.; et al. Tumor-Targeted Delivery Therapy Based on PLGA Nanoparticles. J. Funct. Biomater. 2026, 17, 207.
4. Protein-Encoding Chemically Modified mRNAs for Musculoskeletal Tissue Regeneration and Repair
用于肌肉骨骼组织再生和修复的蛋白质编码化学修饰mRNA
http://www.mdpi.com/2079-4983/17/4/167
Force, B.S.; Gao, X.; Huard, J. Protein-Encoding Chemically Modified mRNAs for Musculoskeletal Tissue Regeneration and Repair. J. Funct. Biomater. 2026, 17, 167.
5. Clinical Outcomes of Immediate and Delayed Composite Restorations After Pulp Capping with Biodentine: A Systematic Literature Review
Biodentine 牙髓覆盖后即刻和延期复合树脂修复的临床结果:系统性文献综述
http://www.mdpi.com/2079-4983/17/5/241
Aleksiuk, M.; Kostenkova, A.; Drukteinis, S. Clinical Outcomes of Immediate and Delayed Composite Restorations After Pulp Capping with Biodentine: A Systematic Literature Review. J. Funct. Biomater. 2026, 17, 241.
6. Bone Substitutes in Alveolar Ridge Augmentation: A Narrative Literature Review
牙槽嵴增高术中的骨替代材料:文献综述
http://www.mdpi.com/2079-4983/17/4/176
Bubalo, M.; Dugonjic, S.; Dubovina, D.; Stojanovic, Z.; Gardasevic, M.; Mijatovic, J.; Milovanovic, B.; Stevic, M.; Stepovic, M.; Jeremic, D.; et al. Bone Substitutes in Alveolar Ridge Augmentation: A Narrative Literature Review. J. Funct. Biomater. 2026, 17, 176.
7. Biomaterials’ Role in Improving Patient Care from Drug Testing and Delivery to Theragnostics and Regenerative Medicine
生物材料在改善患者护理中的作用,涵盖药物测试和输送、诊疗一体化和再生医学等领域
http://www.mdpi.com/2079-4983/17/5/214
Badulescu, S.C.; Ozon, E.A.; Musuc, A.M.; Ene, M.D.; Boscencu, R. Biomaterials’ Role in Improving Patient Care from Drug Testing and Delivery to Theragnostics and Regenerative Medicine. J. Funct. Biomater. 2026, 17, 214.
8. Biogenic Selenium Nanoparticles Functionalized with Natural Polymers or Phytochemicals for Targeted Disruption of Candida spp. Biofilms on Denture Materials: A Systematic Review
利用天然聚合物或植物化学物质功能化的生物源硒纳米颗粒靶向破坏义齿材料上的念珠菌生物膜:系统评价
http://www.mdpi.com/2079-4983/17/5/216
Stefanik, Z.; ?cierski, P.; Dobrzyński, M.; Stefanik, N.; Antonowicz-Hüpsch, M.; Wiench, R. Biogenic Selenium Nanoparticles Functionalized with Natural Polymers or Phytochemicals for Targeted Disruption of Candida spp. Biofilms on Denture Materials: A Systematic Review. J. Funct. Biomater. 2026, 17, 216.
9. Advances and Challenges in Tissue Engineering: Biomaterials, Cellular Strategies, and Clinical Applications
组织工程的进展与挑战:生物材料、细胞策略和临床应用
http://www.mdpi.com/2079-4983/17/4/184
Farjaminejad, R.; Farjaminejad, S.; Garcia-Godoy, F.; Marya, A.; Nucci, L.; Jamilian, A. Advances and Challenges in Tissue Engineering: Biomaterials, Cellular Strategies, and Clinical Applications. J. Funct. Biomater. 2026, 17, 184.
10. Advanced Grafting Biomaterials and Technologies in Chronic Wound Care: Mechanisms, Clinical Outcomes, and Therapeutic Integration
慢性伤口护理中先进的移植生物材料和技术:机制、临床结果和治疗整合
http://www.mdpi.com/2079-4983/17/5/239
Luong, A.D.; Maruthapandi, M.; Luong, J.H.T. Advanced Grafting Biomaterials and Technologies in Chronic Wound Care: Mechanisms, Clinical Outcomes, and Therapeutic Integration. J. Funct. Biomater. 2026, 17, 239.
11. 4D Printing in Biomedical Implants and Functional Healthcare Devices
4D打印在生物医学植入物和功能性医疗设备中的应用
http://www.mdpi.com/2079-4983/17/4/203
Shafiq, M.; Zeb, L. 4D Printing in Biomedical Implants and Functional Healthcare Devices. J. Funct. Biomater. 2026, 17, 203.
12. ZrO2 Ceramic without and with Fullerene C60 Films: In Vitro Direct-Contact Model Using E. coli and S. aureus Bacteria
含富勒烯C60薄膜和不含富勒烯C60薄膜的ZrO2陶瓷:使用大肠杆菌和金黄色葡萄球菌的体外直接接触模型
http://www.mdpi.com/2079-4983/17/4/206
Dorner-Reisel, A.; Li, J.; Trzaskowska, M.; Vivcharenko, V.; Chu, J.; Freiberger, E.; Ritter, U.; Przekora, A.; Zima, A.; Wang, T.; et al. ZrO2 Ceramic without and with Fullerene C60 Films: In Vitro Direct-Contact Model Using E. coli and S. aureus Bacteria. J. Funct. Biomater. 2026, 17, 206.
13. Using Citric-Acid-Based Anodization to Form Magnesium-Doped Carbonated Apatite-Containing Oxides on Solid and 3D-Printed Titanium Substrates
利用柠檬酸阳极氧化法在固体和3D打印钛基底上形成镁掺杂碳酸磷灰石氧化物
http://www.mdpi.com/2079-4983/17/4/190
Parekh, A.; Ettuthaiyil Sambasivan, A.; Paul, M.; Soltani, A.; Ali, A.; Tucker, J.; Pegues, J.W.; Shamsaei, N.; Janorkar, A.V.; Roach, M.D. Using Citric-Acid-Based Anodization to Form Magnesium-Doped Carbonated Apatite-Containing Oxides on Solid and 3D-Printed Titanium Substrates. J. Funct. Biomater. 2026, 17, 190.
14. Therapeutic Efficacy of Dual-Targeting Nanoparticles with Low Immunogenicity in the Treatment of Rheumatoid Arthritis
双靶向低免疫原性纳米颗粒在类风湿性关节炎治疗中的疗效
http://www.mdpi.com/2079-4983/17/5/228
Miao, R.; Wang, H.; Jin, Y.; Liu, C.; He, H. Therapeutic Efficacy of Dual-Targeting Nanoparticles with Low Immunogenicity in the Treatment of Rheumatoid Arthritis. J. Funct. Biomater. 2026, 17, 228.
15. The Potential of a Graphene Monolayer in Macrophage Polarization Using RAW 264.7 Cells
利用 RAW 264.7 细胞研究石墨烯单层在巨噬细胞极化中的应用潜力
http://www.mdpi.com/2079-4983/17/5/232
Lasocka, I.; Gregorczyk-Zboroch, K.; Krajewska, A.; Skibniewska, E.; Skibniewski, M.; Szulc-D?browska, L. The Potential of a Graphene Monolayer in Macrophage Polarization Using RAW 264.7 Cells. J. Funct. Biomater. 2026, 17, 232.
16. Structure and Mechanical Properties of Ti-38Zr-(8-10)Nb (at. %) Alloys for Medical Use
用于医疗用途的Ti-38Zr-(8-10)Nb(原子百分比)合金的结构和力学性能
http://www.mdpi.com/2079-4983/17/4/179
Sergienko, K.V.; Konushkin, S.V.; Morozova, Y.A.; Sudarchikova, M.A.; Kaplan, M.A.; Zhidkov, V.K.; Sevostyanova, T.M.; Simakin, A.V.; Baimler, I.V.; Sevostyanov, M.A.; et al. Structure and Mechanical Properties of Ti-38Zr-(8-10)Nb (at. %) Alloys for Medical Use. J. Funct. Biomater. 2026, 17, 179.
17. Recombinant Human SLPI Surface Functionalization Enhances Early Osseointegration and Biomechanical Stability of Titanium Implants in Rat Model
重组人SLPI表面功能化增强大鼠模型中钛种植体的早期骨整合和生物力学稳定性
http://www.mdpi.com/2079-4983/17/4/205
Chouyratchakarn, W.; Boonsri, B.; Tangkamonsri, S.; Thepsupa, W.; Supanchart, C.; Kumphune, S. Recombinant Human SLPI Surface Functionalization Enhances Early Osseointegration and Biomechanical Stability of Titanium Implants in Rat Model. J. Funct. Biomater. 2026, 17, 205.
18. Potentiation of a Porous Silicon Therapeutic Vaccine in Colorectal Cancer via Oxaliplatin-Mediated Regulation of Myeloid-Driven Immunosuppression
通过奥沙利铂介导的髓系驱动免疫抑制调节增强多孔硅治疗性疫苗在结直肠癌中的疗效
http://www.mdpi.com/2079-4983/17/4/185
Liu, Y.; Akay Hacan, B.; Zheng, J.; Ge, X.; Yu, D.; Chen, Z.; Xu, Y.; Shao, N.; Shen, H.; Liu, X.; et al. Potentiation of a Porous Silicon Therapeutic Vaccine in Colorectal Cancer via Oxaliplatin-Mediated Regulation of Myeloid-Driven Immunosuppression. J. Funct. Biomater. 2026, 17, 185.
19. Nerve Guidance Conduit Prepared from Decellularized Small Intestine for Nerve Repair
利用脱细胞小肠制备的神经导管用于神经修复
http://www.mdpi.com/2079-4983/17/4/170
Huang, X.-T.; Lin, Y.-C.; Cheng, L.-Y.; Chang, Y.-D.; Su, W.-Y. Nerve Guidance Conduit Prepared from Decellularized Small Intestine for Nerve Repair. J. Funct. Biomater. 2026, 17, 170.
20. Multifunctional Y2O3-Modified Borotellurite Bioactive Glasses for Bone Tissue Engineering Applications
用于骨组织工程的多功能Y2O3改性硼碲酸盐生物活性玻璃
http://www.mdpi.com/2079-4983/17/5/240
Oruc Ulas, E.; Aktas, B.; Acikgoz, A.; Yalcin, S.; Aktas, H.G.; Uyar, E.; Celik, Z. Multifunctional Y2O3-Modified Borotellurite Bioactive Glasses for Bone Tissue Engineering Applications. J. Funct. Biomater. 2026, 17, 240.
21. Interface-Enhanced Mg/PLA Composite with Superior Mechanical, Biodegradable and Biocompatible Properties for Orthopedic Implants
界面增强型Mg/PLA复合材料具有优异的机械性能、生物降解性和生物相容性,适用于骨科植入物
http://www.mdpi.com/2079-4983/17/5/210
Teng, W.; Wang, Z.; Xu, Z.; Xin, J.; Sun, C.; Shao, Y.; Wang, C.; Chu, C.; Xue, F.; Bai, J. Interface-Enhanced Mg/PLA Composite with Superior Mechanical, Biodegradable and Biocompatible Properties for Orthopedic Implants. J. Funct. Biomater. 2026, 17, 210.
22. How Bioactive Glass S53P4 Kills Bacteria
生物活性玻璃S53P4如何杀灭细菌
http://www.mdpi.com/2079-4983/17/4/201
Rajkumar, D.; Stiller, A.; Wijnheijmer, J.; Schimmel, I.M.; Hamoen, L.W.; Hupa, L.; Wel, N.N.v.d.; Balraadjsing, P.P.S.; Zaat, S.A.J. How Bioactive Glass S53P4 Kills Bacteria. J. Funct. Biomater. 2026, 17, 201.
23. Granulate-to-Filament: An Extrusion-Mixed PLA–Human Bone Material System for 3D-Printed Bone Scaffolds
颗粒到丝材:一种用于3D打印骨支架的挤出混合PLA-人骨材料体系
http://www.mdpi.com/2079-4983/17/4/187
Neijhoft, J.; Weslati, H.; Eras, V.; Brune, J.; Leiblein, M.; Bianconi, S.; Söhling, N.; Busse, L.; Verboket, R.; Frank, J.; et al. Granulate-to-Filament: An Extrusion-Mixed PLA–Human Bone Material System for 3D-Printed Bone Scaffolds. J. Funct. Biomater. 2026, 17, 187.
24. Does Aging Affect PolyJet™ 3D-Printed Teeth for Endodontics? A Micro-CT Evaluation
衰老是否会影响用于根管治疗的 PolyJet® 3D 打印牙齿?微型 CT 评估
http://www.mdpi.com/2079-4983/17/5/224
Barbosa, C.; Reis, T.; Reis, J.B.; Franco, M.; Batista, C.; Ruben, R.B.; Martín-Biedma, B.; Martín-Cruces, J. Does Aging Affect PolyJet™ 3D-Printed Teeth for Endodontics? A Micro-CT Evaluation. J. Funct. Biomater. 2026, 17, 224.
25. Development of a Scaffold from the Cob of Zea mays L. “Choclo” to Obtain an In Vitro Bone Tissue Model
利用玉米芯(Zea mays L.)“Choclo”构建支架以获得体外骨组织模型
http://www.mdpi.com/2079-4983/17/6/267
Carbajal-Valverde, R.; Pérez-Tulich, L.; Huaccha-Cáceres, F.; Travi-Antonio, G.; Valdivia-Silva, J. Development of a Scaffold from the Cob of Zea mays L. “Choclo” to Obtain an In Vitro Bone Tissue Model. J. Funct. Biomater. 2026, 17, 267.
26. Design and Development of Teixobactin Analog-Loaded Magnetic Nanocomposites for Biofilm Destruction and Pathogen Elimination
载有替索巴汀类似物的磁性纳米复合材料的设计与开发及其在生物膜破坏和病原体清除中的应用
http://www.mdpi.com/2079-4983/17/4/189
Lei, H.; Liang, Y.; Li, X.; Huang, X.; Zhang, C.; Zou, T. Design and Development of Teixobactin Analog-Loaded Magnetic Nanocomposites for Biofilm Destruction and Pathogen Elimination. J. Funct. Biomater. 2026, 17, 189.
27. Cryogenic Foaming of Silk Fibroin Composite for Scaffolds in Bone and Periodontal Regeneration
用于骨和牙周再生支架的丝素蛋白复合材料的低温发泡
http://www.mdpi.com/2079-4983/17/5/230
De Giorgio, G.; Medagli, B.; Matera, B.; Rupel, K.; Tarabella, G.; Turco, G.; Manfredi, M.; Ghezzi, B.; D’Angelo, P. Cryogenic Foaming of Silk Fibroin Composite for Scaffolds in Bone and Periodontal Regeneration. J. Funct. Biomater. 2026, 17, 230.
28. Comparative Late Effects of Hemostatic Biomaterials on Wound Healing at 14 and 30 Days: An In Vivo Animal Study
止血生物材料对伤口愈合14天和30天远期效应的比较:一项体内动物研究
http://www.mdpi.com/2079-4983/17/4/183
Shabes, P.; Rembe, J.-D.; Mammadova, A.; Beckamp, K.H.; Wagenhäuser, M.U.; Ibing, W.; Schelzig, H.; Garabet, W. Comparative Late Effects of Hemostatic Biomaterials on Wound Healing at 14 and 30 Days: An In Vivo Animal Study. J. Funct. Biomater. 2026, 17, 183.
29. Characterization of Argopecten purpuratus Shells as Marine-Derived Bioceramics: Microstructural and Biological Insights for Tissue Engineering Applications
紫扇贝贝壳作为海洋生物陶瓷的特性研究:微观结构和生物学特性及其在组织工程应用中的意义
http://www.mdpi.com/2079-4983/17/4/164
Millán, C.; Benjumeda-Wijnhoven, I.; Contreras Raggio, J.I.; Muñoz, A.; Muñoz-Brautigam, I.; Álamos, M.F.; Lardies, M.A.; Santibañez, J.F.; Lagos, N.A.; Vivanco, J.F. Characterization of Argopecten purpuratus Shells as Marine-Derived Bioceramics: Microstructural and Biological Insights for Tissue Engineering Applications. J. Funct. Biomater. 2026, 17, 164.
30. Bone Regeneration After Maxillary Sinus Augmentation with Allogeneic and Xenogeneic Biomaterials with Adjunctive Photobiomodulation: Histological and Radiological Secondary Outcomes of a Randomized Clinical Trial
采用同种异体和异种生物材料进行上颌窦增高术后骨再生,并辅助光生物调节:一项随机临床试验的组织学和放射学次要结果
http://www.mdpi.com/2079-4983/17/4/186
Dominiak, S.; Piotrowska, A.; Dominiak, M.; Gedrange, T.; Dzi?giel, P.; Baranowska, A.; Ciszyński, M.; Hadzik, J.; Kubasiewicz-Ross, P. Bone Regeneration After Maxillary Sinus Augmentation with Allogeneic and Xenogeneic Biomaterials with Adjunctive Photobiomodulation: Histological and Radiological Secondary Outcomes of a Randomized Clinical Trial. J. Funct. Biomater. 2026, 17, 186.
31. Bone Compatibility of Experimental Ti–Ag and Ti–Cu Alloy Dental Implants in a Beagle Dog Model
实验性钛银合金和钛铜合金牙种植体在比格犬模型中的骨相容性
http://www.mdpi.com/2079-4983/17/4/198
Ohtsuka, Y.; Tenkumo, T.; Takahashi, M.; Nakanishi, Y.; Takebe, H.; Nezu, T. Bone Compatibility of Experimental Ti–Ag and Ti–Cu Alloy Dental Implants in a Beagle Dog Model. J. Funct. Biomater. 2026, 17, 198.
32. Biomimetic Deposition of Zn-Doped Calcium Phosphate Coatings on Surface-Activated Ti6Al4V for Multifunctional Implant Interfaces
仿生沉积法在表面活化的Ti6Al4V上制备锌掺杂磷酸钙涂层,用于多功能植入界面
http://www.mdpi.com/2079-4983/17/5/225
Martín-Santana, Y.; González-Carranza, Y.; Díaz-Tato, L.; Juárez-Hernández, A.; García-Sánchez, E.O.; De La Garza-Ramos, M.A.; Rodríguez-Castellanos, E.A.; Hernández-Rodríguez, M.A.L. Biomimetic Deposition of Zn-Doped Calcium Phosphate Coatings on Surface-Activated Ti6Al4V for Multifunctional Implant Interfaces. J. Funct. Biomater. 2026, 17, 225.
33. Biomimetic Chitosan/Polyvinyl Alcohol–Glycerol Scaffolds Inspired by Porcupine Quills for Segmental Bone Defect Repair
仿生壳聚糖/聚乙烯醇-甘油支架,灵感源自豪猪刺,用于节段性骨缺损修复
http://www.mdpi.com/2079-4983/17/4/177
Yang, J.; Zhao, Z.; Song, Z.; Cao, L.; Mei, X.; Zhang, X. Biomimetic Chitosan/Polyvinyl Alcohol–Glycerol Scaffolds Inspired by Porcupine Quills for Segmental Bone Defect Repair. J. Funct. Biomater. 2026, 17, 177.
34. Biological Impact of Extrusion Bioprinting Nasoseptal Chondrocytes for Tissue Engineering Applications
挤出式生物打印鼻中隔软骨细胞在组织工程应用中的生物学影响
http://www.mdpi.com/2079-4983/17/4/163
Jovic, T.H.; Roberts, J.; Zhao, F.; Doak, S.H.; Whitaker, I.S. Biological Impact of Extrusion Bioprinting Nasoseptal Chondrocytes for Tissue Engineering Applications. J. Funct. Biomater. 2026, 17, 163.
35. ATP-Responsive Bimetallic Metal–Organic Frameworks Amplify Oxidative Stress in the Tumor Microenvironment for Synergistic Chemo-Immunotherapy
ATP响应型双金属-有机框架可增强肿瘤微环境中的氧化应激,从而实现化疗-免疫疗法的协同作用
http://www.mdpi.com/2079-4983/17/4/199
Li, Y.; Zhang, W.; Xu, Z.; Ma, S.; Xiong, Y.; Yu, L.; Gao, H.; Shu, Y.; Fei, T. ATP-Responsive Bimetallic Metal–Organic Frameworks Amplify Oxidative Stress in the Tumor Microenvironment for Synergistic Chemo-Immunotherapy. J. Funct. Biomater. 2026, 17, 199.
期刊介绍
主编:Pankaj Vadgama, Queen Mary University of London, UK
Journal of Functional Biomaterials (JFB, ISSN 2079-4983) 是一个国际性的跨学科开放性获取期刊。JFB期刊发表有关生物医学材料应用的原创性研究文章和评论文章。期刊的重点关注生物材料的物理化学特性及其在组织中的相互作用,以及生物材料在医学设备和生理环境中的制备、性能和应用等相关研究。期刊目前已被Scopus, SCIE (Web of Science), PubMed, PMC, Embase, Ei Compendex, Inspec, CAPlus / SciFinder等多个数据库收录。
2025 Impact Factor:5.9 (JCR Q1)
2025 CiteScore:9.7 (Scopus Q1)
Time to First Decision:15.1 Days
Acceptance to Publication:3.9 Days
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