《生物设计与制造》2024年特邀专辑 | 组织工程和体外模型中的生物材料和新兴技术

文摘   科学   2024-07-08 16:50   浙江  

内容简介


本社论评述了生物材料和组织工程以及体外模型的最新进展。它强调了功能化生物材料、微流控技术和3D打印等技术的结合,以及它们在细胞/组织工程、再生医学和体外组织/疾病模型中的应用。文章还总结了本期专刊发表的重要研究成果,包括开发提高细胞功能的水凝胶、生物墨水和聚合物,使用3D打印技术制造3D组织/肿瘤模型,以及关于伤口愈合、周围神经再生和氧敏感生物材料的工程方法的具体研究。


引用本文(点击最下方阅读原文可下载PDF)

Oliveira JM, Reis RL, 2024. Biomaterials and emerging technologies for tissue engineering and in vitro models. Bio-des Manuf 7(3):237–239. https://doi.org/10.1007/s42242-024-00276-4

往期回顾


2024年特邀专辑论文集锦

1.《生物设计与制造》2024年特邀专辑 | 组织工程和体外模型中的生物材料和新兴技术

Oliveira JM, Reis RL, 2024. Biomaterials and emerging technologies for tissue engineering and in vitro models. Bio-des Manuf 7(3):237–239. https://doi.org/10.1007/s42242-024-00276-4


2.【封面文章】哈佛医学院Su Ryon Shin等 | 一种用于工程化生物组织构建的含氧胶体生物墨水

Jeong SH, Hiemstra J, Blokzijl PV, et al., 2024. An oxygenating colloidal bioink for the engineering of biomimetic tissue constructs. Bio-des Manuf 7(3):240–261. https://doi.org/10.1007/s42242-024-00281-7


3. 利莫瑞克大学Maurice N. Collins等 | 用于组织工程的3D打印电导性pHEMA-co-MAA纳米粒子水凝胶

De Nitto S, Serafin A, Karadimou A, et al., 2024. Development and characterization of 3D-printed electroconductive pHEMA-co-MAA NP-laden hydrogels for tissue engineering. Bio-des Manuf 7(3):262–276. https://doi.org/10.1007/s42242-024-00272-8


4. 马斯特里赫特大学L. Moroni等 | 通过简单策略调控熔融挤出式增材制造应用中表面接枝生物分子的密度

Beeren IAO, Dos Santos G, Dijkstra PJ, et al., 2024. A facile strategy for tuning the density of surface-grafted biomolecules for melt extrusion-based additive manufacturing applications. Bio-des. Manuf 7(3):277–291. https://doi.org/10.1007/s42242-024-00286-2


5. 意大利CNR纳米技术研究所Mercato等 | 具有微米空间分辨率的氧气感测的高度敏感比率荧光纤维矩阵

Grasso G, Onesto V, Forciniti S, et al., 2024. Highly sensitive ratiometric fluorescent fiber matrices for oxygen sensing with micrometer spatial resolution. Bio-des Manuf 7(3):292–306. https://doi.org/10.1007/s42242-024-00277-3


6西安交通大学李涤尘/王玲团队 | 利用体外三维胶质母细胞瘤模型研究氧浓度对细胞功能的影响

Wang S, Yao S, Pei N, et al, 2024. Oxygen tension modulates cell function in an in vitro three-dimensional glioblastoma tumor model. Bio-des Manuf 7(3):307–319. https://doi.org/10.1007/s42242-024-00271-9


7. 印度国家药物教育研究所Banerjee等 | 细胞之间的相互作用在3D体外微生理学疾病模型中的体细胞布局菌群-肠-脑轴上的影响

Alam K, Nair L, Mukherjee S, et al., 2024. Cellular interplay to 3D in vitro microphysiological disease model: cell patterning microbiota–gut–brain axis. Bio-des Manuf 7(3):320–357. https://doi.org/10.1007/s42242-024-00282-6


8. 浙大机械陶凯等 | 创新引领发展:以色列生物3D打印一瞥

Gao L, Liu Z, Dikovsky D, et al., 2024. Innovation leading development: a glimpse into three-dimensional bioprinting in Israel. Bio-des Manuf 7(3):358–382. https://doi.org/10.1007/s42242-024-00275-5

参考文献

上下滑动以阅览

1. Collins MN, Ren G, Young K et al (2021) Scaffold fabrication technologies and structure/function properties in bone tissue engineering. Adv Funct Mater 31(21):2010609. https://doi.org/10.1002/adfm.202010609

2. Gao LJ, Liu ZX, Dikovsky D et al (2024) Innovation leading development: a glimpse into three-dimensional bioprinting in Israel. Bio-Des Manuf (Early Access). https://doi.org/10.1007/s42242-024-00275-5

3. De Nitto S, Serafin A, Karadimou A et al (2024) Development and characterization of 3D-printed electroconductive pHEMA-co-MAA NP-laden hydrogels for tissue engineering. Bio-Des Manuf (Early Access). https://doi.org/10.1007/s42242-024-00272-8

4. Beeren IAO, Dos Santos G, Dijkstra PJ et al (2024) A facile strategy for tuning the density of surface-grafted biomolecules for melt extrusion-based additive manufacturing applications. Bio-Des Manuf (Early Access). https://doi.org/10.1007/s42242-024-00286-2

5. Grasso G, Onesto V, Forciniti S et al (2024) Highly sensitive ratiometric fluorescent fiber matrices for oxygen sensing with micrometer spatial resolution. Bio-Des Manuf (Early Access). https://doi.org/10.1007/s42242-024-00277-3

6. Alam K, Nair L, Mukherjee S et al (2024) Cellular interplay to 3D in vitro microphysiological disease model: cell patterning microbiota–gut–brain axis. Bio-Des Manuf (Early Access). https://doi.org/10.1007/s42242-024-00282-6

7. Wang S, Yao SQ, Pei N et al (2024) Oxygen tension modulates cell function in an in vitro three-dimensional glioblastoma tumor model. Bio-Des Manuf (Early Access). https://doi.org/10.1007/s42242-024-00271-9

8. Jeong SH, Hiemstra J, Blokzijl PV et al (2024) An oxygenating colloidal bioink for the engineering of biomimetic tissue constructs. Bio-Des Manuf (Early Access). https://doi.org/10.1007/s42242-024-00281-7


关于本刊

Bio-Design and Manufacturing(中文名《生物设计与制造》),简称BDM,是浙江大学主办的专业英文双月刊,主编杨华勇院士、崔占峰院士,2018年新创,2019年被SCI-E等库检索,2023年起改为双月刊,年末升入《2023年中国科学院文献情报中心期刊分区表》医学一区,2024年公布的最新影响因子为8.1,位列JCR的Q1区,13/122。


初审迅速:初审快速退稿,不影响作者投其它期刊。

审稿速度快:过去两年平均录用时间约40天;平均退稿时间约10天。文章录用后及时在线SpringerLink。一般两周左右即被SCI-E检索。

收稿方向 :先进制造(3D打印及生物处理工程等)、生物墨水与配方、组织与器官工程、医学与诊断装置、生物产品设计、仿生设计与制造等。

文章类型:Research Article, Review, Short Paper (包括Editorial, Perspective, Letter, Technical Note, Case Report, Lab Report, Negative Result等)。


期刊主页:

http://www.springer.com/journal/42242

http://www.jzus.zju.edu.cn/ (国内可下载全文)

在线投稿地址:

http://www.editorialmanager.com/bdmj/default.aspx


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