省錢、省力、省時、省事
完免費、無需舟車勞頓,無論何地、坐在家里或單位內只要能上網即可與國際生物力學名家交流、體驗

一線生物力學專家同行匯聚
推動力學生物學的交流與合作

隨時隨地學習、探討、交流
學習、交流、探討生物生物學的科研現狀、趨勢、臨床發展路徑、科研實現工具和實現方法方案等

承接細細胞力學和3D生物打印實驗服務
· 細胞牽張拉伸應力加載刺激培養
· 細胞組織壓力加載刺激培養
· 三維水凝膠細胞組織牽張拉伸應力加載刺激培養服務
· 細胞牽流體剪切應力加載刺激培養服務
· 三維組織細胞灌流培養服務
· 單細胞納米壓痕楊氏模量測試分析服務
· 組織凝膠納米壓痕楊氏模量測試分析服務
· CCII細胞損傷服務
· Microduits微柱陣列細胞應力分布測試服務
· 三維血管、軟骨、骨組織、心臟瓣膜、皮膚應力加載培養服務
· 單細胞應力加載、形變測量與力特性分析系統
· regenhu細胞友好型3D生物打印服務
· 靜水壓力刺激細胞組織培養
· regenhu細胞友好型3D生物打印服務。
定制生物力學實驗裝置
· 承接細細胞力學和3D生物打印實驗服務
誠招各區經銷合作商
· 承接細細胞力學和3D生物打印實驗服務
細胞生物力學學術研討會將于2018年4月18日至4月20日在中國北京手都醫科大學學術交流中心舉辦。本次研討會由手都醫科大學生物醫學工程學院、臨床生物力學應用基礎研究北京市重點實驗室主辦,由世聯博研(北京)科技有限公司承辦。
一、會議主要議題
生物力學與力學生物學技術交流;細胞組織應力(拉力、壓力、流體剪切力)培養、細胞組織機械特性測試分析、細胞組織自主伸縮力及剛度硬細胞組織
三維灌注培養、技術交流等。
二、參會人員
從事細胞力學和力學生物學領域的專家和研究人員
三、會務費
會議統一安排食宿,不收會務費。
四、會務聯系人
世聯博研(北京)科技有限公司:
王雪娥010-67529703,18210996806,18618101725,13466675923
手都醫科大學臨床生物力學應用基礎研究北京市重點實驗室:
王輝010-83911848
|
纖維絲張力和扭力測 |
自動法向壓痕和厚度映射 |
|
脛骨三維輪廓測試 |
機電活性材料(如結締組織、帶電水凝膠等)壓縮過程中電位分布 |

該系統是能集成壓縮、張力、剪切、摩擦、扭轉和2D/3D壓痕、3D輪廓及多力混合耦連測試的一體化微觀力學測試裝置。能對生物組織、聚合物、凝膠、生物材料、膠囊、粘合劑和食品進行精密可靠的機械刺激和表征。允許表征的機械性能包括剛度、強度、模量、粘彈性、塑性、硬度、附著力、腫脹和松弛位移控制運動。
特點
1、適用樣品范圍廣:
1、適用樣品范圍廣:
1.1、從骨等硬組織材料到腦組織、眼角膜等軟組織材料
1.2、從粗椎間盤的樣品到細纖維絲
2、通高量壓痕測試分析
◆無需表面平坦,可在不規則表面壓痕
2.1、三維法向壓痕映射非平面樣品整個表面的力學特性
2.2、48孔板中壓痕測試分析
3、力學類型測試分析功能齊
模塊化集成壓縮、張力、剪切、摩擦、扭轉、穿刺、摩擦和2D/3D壓痕、3D表面輪廓、3D厚度等各種力學類型支持,微觀結構表征及動態力學分析研究
4、高分辨率:
4.1、位移分辨率達0.1um
4.2、力分辨率 達0.025mN
5、 行程范圍廣:50-250mm
6、體積小巧、可放入培養箱內
7 、高變分辨率成像跟蹤分析
8、多軸向、多力偶聯刺激
9、活性組織電位分布測試分析
10、產品成熟,文獻量達 上千篇

細胞被均勻地限制/壓縮在兩個亞微米分辨率的兩個平行表面之間。不同的限制高度(例如1um – 300um),允許長期細胞培養和細胞增殖,同時保持對封閉的控制
與高分辨率光學顯微鏡系統兼容,可以處理足夠多的細胞以進行完整的基因表達分析,可與生物功能化的微結構化底物和/或不同的基質(幾何形狀控制)結合使用
可以與凝膠結合(硬度控制),兼容任何細胞培養底物(培養皿至96孔板)



應用:
Cell migration 2.5D, migration and interaction of non-adhesive cells, cell squeezing, imaging of flat cells (organelles aligned in 2D), super-resolution video-microscopy (organelles move less), contractility assay, etc
Confinement illustration
HeLa cells: not confined, 5 ?m, 3 ?m.
Explore examples of applications
> Cancer invasiveness assay: Quantification of migration behaviors and migration transitions
> Cancer aggressiveness assay: Quantification of contractility of somatic or cancer cells
> Endocytosis assay: Improved observation of events taking place at the membrane
> Exocytosis assay: Improved observation of events taking place at the apical membrane
> Frustrated phagocytosis: Characterization of the mechanism
> Immune system in a well: 2D migration and interaction of non-adherent immune cells
> Immune cells interaction: 2D interaction of non-adherent immune cells
> Mitotic assembly assay: Quantification of mitotic spindle disorders
> Quantitative cell migration assay: Fast and fine analysis of cell migration properties
文獻:PUBLICATIONS
承接定制細胞微圖案、微溝槽培養檢測科研裝置、微柱陣列、微針加工制作
銷售培訓微圖案、微溝槽培養檢測科研裝置、微柱陣列、微針加工制作設備、提供技術培訓
歐美進口設備和技術保證!
微柱培養陣列及其特點:


●每張陣列尺寸為3.2 x 3.2 mm,含10 x 18個觀測點,每個觀測點有170個按六邊形排列的微柱
●微柱直徑5 μm,高15 μm,中心間距為12 μm
●微柱彈力范圍1-3 nN(有其他需求可定制)
●標準涂層是纖維連接蛋白或膠原蛋白I
●細胞外基質(EDM)蛋白包可按找需求定制
軟件可用于從光學顯微鏡拍攝的細胞圖片中提取細胞力學參數(力/微柱、微柱坐標、微柱形變、細胞的應變和應力分布等)(圖3)。分析結果可保存為Excel表格,便于后續處理。

圖3
測量原理:
未變形的微柱在明場圖片中呈較亮的圓形,周圍是較暗的邊,通過霍夫變換可得到其形心。發生變形的微柱呈較暗的半月形,通過圖像處理可得到微柱的形變大小(圖1)。由于微柱剛度已知,所以進而可得到每根微柱產生的力。

1、熒光倒置顯微鏡:
主要用于常規活細胞成像,快速高靈敏度活細胞熒光成像,主要包括顯微平臺,成像系統,工作站?
2、微柱陣列培養設備:

將硅膠微柱陣列刻在蓋玻片上(圖1 A),并包被蛋白,然后置于培養皿中(圖1 B)。微柱上需要包被蛋白。標準的包被蛋白有纖連蛋白或I型膠原。若需其他包被蛋白,需提前告知。每張微柱陣列可以分析120-150個細胞,得到的數據足以進行統計學分析。每種實驗條件可進行2-3次實驗,這樣得到的結果會更加穩定。微柱陣列本身并未進行包被,在使用前需要自行包被合適的蛋白(用戶自選,可購常用的包被蛋白)。
?3、光學減震臺
?4、預裝MicroPost細胞牽引力、內源力分析軟件的計算機系統:
軟件可用于從光學顯微鏡拍攝的細胞圖片中提取細胞力學參數:(力/微柱、微柱坐標、微柱形變、細胞的應變和應力分布等);
做細胞如下力學特性分析,包括:
1)、微柱形變;
2)、細胞的應變和應力分布
3)、細胞牽引力、內源力(cell?active?force)
4)、主動收縮力

該系統是一套基于微流控流體壓力梯度的、在倒置顯微鏡的擴展起來的、集成流式細胞儀特性、熒光檢測模塊、溫控模 塊、高速成像和數據采集分析軟件的高通量單細胞實時形變測量和單細胞力學性質分析系統。
?????
是一種以流式細胞儀的速度檢測單個細胞形態和力學性質的技術!
細胞被泵送通過微流控芯片。 每個細胞都被實時拍攝、分析和成像存儲。 此外,非破壞性的力量應用于細胞,提供一種方便,穩健和高通量的技術進行生物標志物的檢測,可用于基礎科學和臨床研究。
探索細胞的物理特性作為生物標志物,可以將非破壞性的力量應用于細胞或珠子,并觀察它們的變形。?這允許研究對物理壓力的te定機械響應。
you勢亮點:
機械力學作為一種新的生物標志物--溫和無損傷
?
每個細胞被同時拍照、分析和儲存。?這允許通過它們的光學特性來找到小亞群或區分細胞。?另外可以研究像表面拓撲或細胞對光的衰減的形態特性。
每個獲取圖像的存儲 
?

?
細胞通過微流通道時,提取細胞變形、亮度和大小等參數,同時。?這允許實時地研究細胞屬性。
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| Marchiori, G., Berni, M., Boi, M., Petretta, M., Grigolo, B., Bellucci, D., Cannillo, V., Garavelli, C. and Bianchi, M. | Design of a novel procedure for the optimization of the mechanical performances of 3D printed scaffolds for bone tissue engineering combining CAD, Taguchi method and FEA | 2019 | Medical Engineering & Physics Vol. 69, pp. 92 - 99? |
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| Kjar, A. and Huang, Y. | Application of Micro-Scale 3D Printing in Pharmaceutics | 2019 | Pharmaceutics Vol. 11(8)? |
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| Derr, K., Zou, J., Luo, K., Song, M.J., Sittampalam, G.S., Zhou, C., Michael, S., Ferrer, M. and Derr, P. | Fully 3D Bioprinted Skin Equivalent Constructs with Validated Morphology and Barrier Function | 2019 | Tissue Engineering Part C: Methods Vol. 0(ja), pp. null? |
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| Costa, P.F. | Translating Biofabrication to the Market | 2019 | Trends in Biotechnology? | article | DOIURL? |
| Cofi?o, C., Perez-Amodio, S., Semino, C.E., Engel, E. and Mateos-Timoneda, M.A. | Development of a Self-Assembled Peptide/Methylcellulose-Based Bioink for 3D Bioprinting | 2019 | Macromolecular Materials and Engineering Vol. 0(0), pp. 1900353? |
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| Cernencu, A.I., Lungu, A., Stancu, I.-C., Serafim, A., Heggset, E., Syverud, K. and Iovu, H. | Bioinspired 3D printable pectin-nanocellulose ink formulations | 2019 | Carbohydrate Polymers Vol. 220, pp. 12 - 21? |
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| Caetano, G., Wang, W., Murashima, A., Passarini, J.R., Bagne, L., Leite, M., Hyppolito, M., Al-Deyab, S., El-Newehy, M., Bártolo, P. and Frade, M.A.C. | Tissue Constructs with Human Adipose-Derived Mesenchymal Stem Cells to Treat Bone Defects in Rats | 2019 | Materials Vol. 12(14)? |
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| Azim, N., Hart, C., Sommerhage, F., Aubin, M., Hickman, J.J. and Rajaraman, S. | Precision Plating of Human Electrogenic Cells on Microelectrodes Enhanced With Precision Electrodeposited Nano-Porous Platinum for Cell-Based Biosensing Applications | 2019 | Journal of Microelectromechanical Systems Vol. 28(1), pp. 50-62? |
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| Khaled, S.A., Alexander, M.R., Irvine, D.J., Wildman, R.D., Wallace, M.J., Sharpe, S., Yoo, J. and Roberts, C.J. | Extrusion 3D Printing of Paracetamol Tablets from a Single Formulation with Tunable Release Profiles Through Control of Tablet Geometry | 2018 | AAPS PharmSciTech Vol. 19(8), pp. 3403-3413? |
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| Zamani, Y., Mohammadi, J., Amoabediny, G., Visscher, D.O., Helder, M.N., Zandieh-Doulabi, B. and Klein-Nulend, J. | Enhanced osteogenic activity by MC3T3-E1 pre-osteoblasts on chemically surface-modified poly(upepsilon-caprolactone) 3D-printed scaffolds compared to RGD immobilized scaffolds | 2018 | Biomedical Materials Vol. 14(1), pp. 015008? |
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2018 | Macromolecular Bioscience Vol. 18, pp. 1800167? |
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2018 | International Journal of Bioprinting Vol. 4? |
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2018 | Bio-Design and Manufacturing Vol. 1(1), pp. 69-75? |
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2018 | Lekar a Technika Vol. 48, pp. 46-51? |
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| Shi, P., Tan, Y.S.E., Yeong, W.Y., Li, H.Y. and Laude, A. | A bilayer photoreceptor‐retinal tissue model with gradient cell density design: A study of microvalve‐based bioprinting | 2018 | Journal of Tissue Engineering and Regenerative Medicine Vol. 12(5), pp. 1297-1306? |
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| Schmieg, B., Schimek, A. and Franzreb, M. | Development and performance of a 3D‐printable Polyethylenglycol‐Diacrylate hydrogel suitable for enzyme entrapment and long‐term biocatalytic applications | 2018 | Engineering in Life Sciences Vol. 0(ja)? |
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| Peiffer, Q.C. | Biofabrication: Tools for new therapeutics in regenerative medicine and drug delivery | 2018 | School: Queensland University of Technology? | mastersthesis | DOIURL? |
| Park, H.S., Lee, J.S., Jung, H., Kim, D.Y., Kim, S.W., Sultan, M.T. and Park, C.H. | An omentum-cultured 3D-printed artificial trachea: in vivo bioreactor | 2018 | Artificial Cells, Nanomedicine, and Biotechnology Vol. 46(sup3), pp. S1131-S1140? |
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| Li, H., Tan, Y.J., Liu, S. and Li, L. | Three-Dimensional Bioprinting of Oppositely Charged Hydrogels with Super Strong Interface Bonding | 2018 | ACS Applied Materials & Interfaces Vol. 10(13), pp. 11164-11174? |
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| Li, H., Tan, C. and Li, L. | Review of 3D printable hydrogels and constructs | 2018 | Materials & Design Vol. 159, pp. 20 - 38? |
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| Lee, M., Bae, K., Guillon, P., Chang, J., Arlov, ?. and Zenobi-Wong, M. | Exploitation of Cationic Silica Nanoparticles for Bioprinting of Large-Scale Constructs with High Printing Fidelity | 2018 | ACS Applied Materials & Interfaces Vol. 10(44), pp. 37820-37828? |
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| Laternser, S., Keller, H., Leupin, O., Rausch, M., Graf-Hausner, U. and Rimann, M. | A Novel Microplate 3D Bioprinting Platform for the Engineering of Muscle and Tendon Tissues | 2018 | SLAS TECHNOLOGY: Translating Life Sciences Innovation Vol. 0(0), pp. 2472630318776594? |
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| Kuzmenko, V., Karabulut, E., Pernevik, E., Enoksson, P. and Gatenholm, P. | Tailor-made conductive inks from cellulose nanofibrils for 3D printing of neural guidelines | 2018 | Carbohydrate Polymers Vol. 189, pp. 22 - 30? |
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| Kumari, S., Bargel, H., Anby, M.U., Lafargue, D. and Scheibel, T. | Recombinant Spider Silk Hydrogels for Sustained Release of Biologicals | 2018 | ACS Biomaterials Science & Engineering Vol. 4(5), pp. 1750-1759? |
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| Kokkinis, D., Bouville, F. and Studart, A.R. | 3D Printing of Materials with Tunable Failure via Bioinspired Mechanical Gradients | 2018 | Advanced Materials Vol. 30(19), pp. 1705808? |
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| Khaled, S.A., Alexander, M.R., Wildman, R.D., Wallace, M.J., Sharpe, S., Yoo, J. and Roberts, C.J. | 3D extrusion printing of high drug loading immediate release paracetamol tablets | 2018 | International Journal of Pharmaceutics Vol. 538(1), pp. 223 - 230? |
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| Kelder, C., Bakker, A.D., Klein-Nulend, J. and Wismeijer, D. | The 3D Printing of Calcium Phosphate with K-Carrageenan under Conditions Permitting the Incorporation of Biological Components—A Method | 2018 | Journal of Functional Biomaterials Vol. 9(4)? |
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| Huang, Y.-A., Ho, C.T., Lin, Y.-H., Lee, C.-J., Ho, S.-M., Li, M.-C. and Hwang, E. | Nanoimprinted Anisotropic Topography Preferentially Guides Axons and Enhances Nerve Regeneration | 2018 | Macromolecular Bioscience Vol. 0(0), pp. 1800335? |
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| Gungor-Ozkerim, P.S., Inci, I., Zhang, Y.S., Khademhosseini, A. and Dokmeci, M.R. | Bioinks for 3D bioprinting: an overview | 2018 | Biomater. Sci. Vol. 6, pp. 915-946? |
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| Gretzinger, S., Beckert, N., Gleadall, A., Lee-Thedieck, C. and Hubbuch, J. | 3D bioprinting – Flow cytometry as analytical strategy for 3D cell structures | 2018 | Bioprinting Vol. 11, pp. e00023? |
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| Fortunato, G.M., Maria, C.D., Eglin, D., Serra, T. and Vozzi, G. | An ink-jet printed electrical stimulation platform for muscle tissue regeneration | 2018 | Bioprinting Vol. 11, pp. e00035? |
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| Firth, J., Basit, A.W. and Gaisford, S. | The Role of Semi-Solid Extrusion Printing in Clinical Practice | 2018 | 3D Printing of Pharmaceuticals, pp. 133-151? | inbook | DOI?? |
| Daly, A.C., Pitacco, P., Nulty, J., Cunniffe, G.M. and Kelly, D.J. | 3D printed microchannel networks to direct vascularisation during endochondral bone repair | 2018 | Biomaterials Vol. 162, pp. 34 - 46? |
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| Couck, S., Saint-Remi, J.C., der Perre, S.V., Baron, G.V., Minas, C., Ruch, P. and Denayer, J.F. | 3D-printed SAPO-34 monoliths for gas separation | 2018 | Microporous and Mesoporous Materials Vol. 255(Supplement C), pp. 185 - 191? |
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| Chinga-Carrasco, G. | Potential and Limitations of Nanocelluloses as Components in Biocomposite Inks for Three-Dimensional Bioprinting and for Biomedical Devices | 2018 | Biomacromolecules Vol. 19(3), pp. 701-711? |
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| Caetano, G.F., Wang, W., Chiang, W.-H., Cooper, G., Diver, C., Blaker, J.J., Frade, M.A. and Bártolo, P. | 3D-Printed Poly(?-caprolactone)/Graphene Scaffolds Activated with P1-Latex Protein for Bone Regeneration | 2018 | 3D Printing and Additive Manufacturing Vol. 0(0), pp. null? |
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| Bastola, A., Paudel, M. and Li, L. | Development of hybrid magnetorheological elastomers by 3D printing | 2018 | Polymer Vol. 149, pp. 213 - 228? |
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| Banerjee, H. and Ren, H. | Electromagnetically Responsive Soft-Flexible Robots and Sensors for Biomedical Applications and Impending Challenges | 2018 | Electromagnetic Actuation and Sensing in Medical Robotics, pp. 43-72? | inbook | DOI?? |
| Aied, A., Song, W., Wang, W., Baki, A. and Sigen, A. | 3D Bioprinting of stimuli-responsive polymers synthesised from DE-ATRP into soft tissue replicas | 2018 | Bioprinting? | article | DOIURL? |
| Suntornnond, R., Tan, E., An, J. and Chua, C. | A highly printable and biocompatible hydrogel composite for direct printing of soft and perfusable vasculature-like structures | 2017 | Scientific Reports Vol. 7(16902)? |
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| Schroeder, T.B.H., Guha, A., Lamoureux, A., VanRenterghem, G., Sept, D., Shtein, M., Yang, J. and Mayer, M. | An electric-eel-inspired soft power source from stacked hydrogels | 2017 | Nature Vol. 552, pp. 214? |
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| Nguyen, D., H?gg, D., Forsman, A., Ekholm, J., Nimkingratana, P., Brantsing, C., Kalogeropoulos, T., Zaunz, S., Concaro, S., Brittberg, M., Lindahl, A., Gatenholm, P., Enejder, A. and Simonsson, S. | Cartilage Tissue Engineering by the 3D Bioprinting of iPS Cells in a Nanocellulose/Alginate Bioink | 2017 | Scientific Reports Vol. 7Scientific Reports? |
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| Freeman, F.E. and Kelly, D.J. | Tuning Alginate Bioink Stiffness and Composition for Controlled Growth Factor Delivery and to Spatially Direct MSC Fate within Bioprinted Tissues | 2017 | Scientific Reports Vol. 7(1), pp. 17042? |
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| Levato, R., Webb, W.R., Otto, I.A., Mensinga, A., Zhang, Y., van Rijen, M., van Weeren, R., Khan, I.M. and Malda, J. | The bio in the ink: cartilage regeneration with bioprintable hydrogels and articular cartilage-derived progenitor cells
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2017 | Acta Biomaterialia Vol. 61(Supplement C), pp. 41-53? |
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| Bertlein, S., Brown, G., Lim, K., Jungst, T., Boeck, T., Blunk, T., Tessmar, J., J. Hooper, G., Woodfield, T. and Groll, J. | Thiol-Ene Clickable Gelatin: A Platform Bioink for Multiple 3D Biofabrication Technologies | 2017 | Advanced Materials? | article | DOI?? |
| Mancini, I., Vindas Bola?os, R., Brommer, H., Castilho, M., Ribeiro, A., van Loon, J., Mensinga, A., Rijen, M., Malda, J. and van Weeren, P. | Fixation of hydrogel constructs for cartilage repair in the equine model: a challenging issue | 2017 | Tissue Engineering Part C: Methods? | article | DOI?? |
| Cunniffe, G., Gonzalez-Fernandez, T., Daly, A., Nelson Sathy, B., Jeon, O., Alsberg, E. and J. Kelly, D. | Three-Dimensional Bioprinting of Polycaprolactone Reinforced Gene Activated Bioinks for Bone Tissue Engineering | 2017 | Tissue Engineering Part ATissue Engineering Part A? | article | DOI?? |
| Abbadessa, A., Landín, M., Oude Blenke, E., Hennink, W.E. and Vermonden, T. | Two-component thermosensitive hydrogels: Phase separation affecting rheological behavior | 2017 | European Polymer Journal Vol. 92(Supplement C), pp. 13-26? |
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| D'Amora, U., D'Este, M., Eglin, D., Safari, F., Sprecher, C., Gloria, A., De Santis, R., Alini, M. and Ambrosio, L. | Collagen Density Gradient on 3D Printed Poly(ε-Caprolactone) Scaffolds for Interface Tissue Engineering
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2017 | Journal of tissue engineering and regenerative medicine Vol. 12? |
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| Bastola, A.K., Hoang, V.T. and Li, L. | A novel hybrid magnetorheological elastomer developed by 3D printing | 2017 | Materials & Design Vol. 114(Supplement C), pp. 391-397? |
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| Zeng, Q., Macri, L., Prasad, A., Clark, R., Zeugolis, D., Hanley, C., Garcia, Y., Pandit, A., Leavesley, D., Stupar, D., Fernandez, M., Fan, C. and Upton, Z. | 6.20 Skin Tissue Engineering☆ | 2017 | Comprehensive Biomaterials II\, pp. 334 - 382? | incollection | DOIURL? |
| Thamm, C., DeSimone, E. and Scheibel, T. | Characterization of Hydrogels Made of a Novel Spider Silk Protein eMaSp1s and Evaluation for 3D Printing | 2017 | Macromolecular Bioscience Vol. 17(11), pp. 1700141-n/a? |
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| Sultan, S., Siqueira, G., Zimmermann, T. and Mathew, A.P. | 3D printing of nano-cellulosic biomaterials for medical applications | 2017 | Current Opinion in Biomedical Engineering Vol. 2(Supplement C), pp. 29 - 34? |
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| Stichler, S., B?ck, T., Paxton, N.C., Bertlein, S., Levato, R., Schill, V., Smolan, W., Malda, J., Tessmar, J., Blunk, T. and Groll, J. | Double printing of hyaluronic acid / poly(glycidol) hybrid hydrogels with poly(ε-caprolactone) for MSC chondrogenesis | 2017 | Biofabrication? | article | DOI?? |
| Sommer, M.R., Alison, L., Minas, C., Tervoort, E., Ruhs, P.A. and Studart, A.R. | 3D printing of concentrated emulsions into multiphase biocompatible soft materials | 2017 | Soft Matter Vol. 13, pp. 1794-1803? |
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| Siqueira, G., Kokkinis, D., Libanori, R., Hausmann, M.K., Gladman, A.S., Neels, A., Tingaut, P., Zimmermann, T., Lewis, J.A. and Studart, A.R. | Cellulose Nanocrystal Inks for 3D Printing of Textured Cellular Architectures | 2017 | Advanced Functional Materials Vol. 27(12), pp. 1604619-n/a? |
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| Schaffner, M., Rühs, P.A., Coulter, F., Kilcher, S. and Studart, A.R. | 3D printing of bacteria into functional complex materials | 2017 | Science Advances Vol. 3(12)? |
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| Ribeiro, A., Blokzijl, M.M., Levato, R., Visser, C.W., Castilho, M., Hennink, W.E., Vermonden, T. and Malda, J. | Assessing bioink shape fidelity to aid material development in 3D bioprinting | 2017 | Biofabrication? | article | DOI?? |
| Reitmaier, S., Kovtun, A., Schuelke, J., Kanter, B., Lemm, M., Hoess, A., Heinemann, S., Nies, B. and Ignatius, A. | Strontium(II) and mechanical loading additively augment bone formation in calcium phosphate scaffolds | 2017 | Journal of Orthopaedic Research, pp. n/a-n/a? | article | DOI?? |
| Peng, W., Datta, P., Ayan, B., Ozbolat, V., Sosnoski, D. and Ozbolat, I.T. | 3D bioprinting for drug discovery and development in pharmaceutics | 2017 | Acta Biomaterialia Vol. 57, pp. 26 - 46? |
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| Paxton, N.C., Smolan, W., B?ck, T., Melchels, F.P.W., Groll, J. and Juengst, T. | Proposal to Assess Printability of Bioinks for Extrusion-Based Bioprinting and Evaluation of Rheological Properties Governing Bioprintability | 2017 | Biofabrication? | article | DOI?? |
| Mouser, V.H.M., Abbadessa, A., Levato, R., Hennink, W.E., Vermonden, T., Gawlitta, D. and Malda, J. | Development of a thermosensitive HAMA-containing bio-ink for the fabrication of composite cartilage repair constructs | 2017 | Biofabrication Vol. 9(1), pp. 015026? |
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| Lorson, T., Jaksch, S., Lübtow, M.M., Jüngst, T., Groll, J., Lühmann, T. and Luxenhofer, R. | A Thermogelling Supramolecular Hydrogel with Sponge-Like Morphology as a Cytocompatible Bioink | 2017 | Biomacromolecules Vol. 18(7), pp. 2161-2171? |
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| Ligon, S.C., Liska, R., Stampfl, J., Gurr, M. and Mülhaupt, R. | Polymers for 3D Printing and Customized Additive Manufacturing | 2017 | Chemical Reviews Vol. 117(15), pp. 10212-10290? |
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| Liao, Z., Sinjab, F., Nommeots-Nomm, A., Jones, J., Ruiz-Cantu, L., Yang, J., Rose, F. and Notingher, I. | Feasibility of Spatially Offset Raman Spectroscopy for in Vitro and in Vivo Monitoring Mineralization of Bone Tissue Engineering Scaffolds | 2017 | Analytical Chemistry Vol. 89(1), pp. 847-853? |
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| Kuzmenko, V. | Cellulose-derived conductive nanofibrous materials for energy storage and tissue engineering Applications
[BibTeX] |
2017 | School: Department of Microtechnology and Nanoscience CHALMERS UNIVERSITY OF TECHNOLOGY? | phdthesis | URL? |
| Huang, Y., Zhang, X.-F., Gao, G., Yonezawa, T. and Cui, X. | 3D bioprinting and the current applications in tissue engineering | 2017 | Biotechnology Journal Vol. 12(8), pp. 1600734-n/a? |
article | DOI?? |
| Henriksson, I., Gatenholm, P. and H?gg, D.A. | Increased lipid accumulation and adipogenic gene expression of adipocytes in 3D bioprinted nanocellulose scaffolds | 2017 | Biofabrication Vol. 9(1), pp. 015022? |
article | URL? |
| DeSimone, E., Schacht, K., Pellert, A. and Scheibel, T. | Recombinant spider silk-based bioinks | 2017 | Biofabrication Vol. 9(4), pp. 044104? |
article | URL? |
| Dalton, P.D. | Melt electrowriting with additive manufacturing principles | 2017 | Current Opinion in Biomedical Engineering Vol. 2(Supplement C), pp. 49 - 57? |
article | DOIURL? |
| Choi, Y., Yi, H., Kim, S. and Cho, D. | 3D Cell Printed Tissue Analogues: A New Platform for Theranostics | 2017 | Theranostics? | article | URL? |
| Charbe, N.B., McCarron, P.A., Lane, M.E. and Tambuwala, M.M. | Application of three-dimensional printing for colon targeted drug delivery systems | 2017 | International Journal of Pharmaceutical Investigation Vol. 7(2), pp. 47-59? |
article | URL? |
| Borovjagin, A.V., Ogle, B.M., Berry, J.L. and Zhang, J. | From Microscale Devices to 3D Printing | 2017 | Circulation Research Vol. 120(1), pp. 150-165? |
article | DOIURL? |
| Baumann, B., Jungst, T., Stichler, S., Feineis, S., Wiltschka, O., Kuhlmann, M., Lindén, M. and Groll, J. | Control of Nanoparticle Release Kinetics from 3D Printed Hydrogel Scaffolds | 2017 | Angewandte Chemie International Edition, pp. n/a-n/a? | article | DOI?? |
| Aljohani, W., Ullah, M.W., Zhang, X. and Yang, G. | Bioprinting and its applications in tissue engineering and regenerative medicine | 2017 | International Journal of Biological Macromolecules? | article | DOIURL? |
| Bastola, A., Hoang Tan, V. and Lin, L. | Magnetorheological Elastomer: A novel approach of synthesis | 2016 | 2ND INTERNATIONAL CONFERENCE IN SPORTS SCIENCE & TECHNOLOGY, At NTU, Singapore? | conference | URL? |
| Durual, S. | Impression 3D et régénération osseuse, un mariage plein d'avenir
[BibTeX] |
2016 | Biomateriaux Cliniques Vol. 1BioMatériaux Cliniques, pp. 58-61? |
article | URL? |
| Gudapati, H., Dey, M. and Ozbolat, I. | A comprehensive review on droplet-based bioprinting: Past, present and future. | 2016 | Biomaterials Vol. 102, pp. 20-42? |
article | URL? |
| Sears, N.A., Seshadri, D.R., Dhavalikar, P.S. and Cosgriff-Hernandez, E. | A Review of Three-Dimensional Printing in Tissue Engineering | 2016 | Tissue Engineering Part B: Reviews Vol. 22(4), pp. 298-310? |
article | DOI?? |
| Wang, W., Caetano, G., Chiang, W.-H., Sousa, A.L., Blaker, J., Frade, M.A.R.C.O., Frade, C. and Jorge Bártolo, P. | Morphological, mechanical and biological assessment of PCL/pristine graphene scaffolds for bone regeneration | 2016 | International Journal of Bioprinting Vol. 2, pp. 95-105? |
article | URL? |
| Visscher, D.O., Bos, E.J., Peeters, M., Kuzmin, N.V., Groot, M.L., Helder, M.N. and van Zuijlen, P.P.M. | Cartilage Tissue Engineering: Preventing Tissue Scaffold Contraction Using a 3D-Printed Polymeric Cage. | 2016 | Tissue engineering Part C, Methods Vol. 22, pp. 573-84? |
article | URL? |
| Stichler, S., Jungst, T., Schamel, M., Zilkowski, I., Kuhlmann, M., Bock, T., Blunk, T., Tessmar, J. and Groll, J. | Thiol-ene Clickable Poly(glycidol) Hydrogels for Biofabrication. | 2016 | Annals of biomedical engineering? | article | URL? |
| Kesti, M., Fisch, P., Pensalfini, M., Mazza, E. and Zenobi-Wong, M. | Guidelines for standardization of bioprinting: a systematic study of process parameters and their effect on bioprinted structures | 2016 | BioNanoMaterials Vol. 17(3-4), pp. 193-204? |
article | DOI?? |
| Durual, S. | Emergence d'une nouvelle génération de substituts osseux synthétiques imprimés en 3D
[BibTeX] |
2016 | BIOMATERIAUX D’AUJOURD’HUI ET DE DEMAINBI Vol. Hors-sérieJournal de parodontologie et d'implantologie orale, pp. 63-67? |
article | URL? |
| Khati, V., Kellom?ki, M. and Anderson, H.S. | Development of a Robust Decellularized Extracellular Matrix Bioink for 3D Bioprinting | 2016 | School: Tampere University of Technology? | mastersthesis | ? |
| Wu, C., Wang, B., Zhang, C., Wysk, R.A. and Chen, Y.-W. | Bioprinting: an assessment based on manufacturing readiness levels | 2016 | Critical Reviews in Biotechnology Vol. 0(0), pp. 1-22? |
article | DOI?? |
| Wang, W.G., Chang, W.H. and Bartolo, P.J. | Design, fabrication and evaluation of pcl-graphene scaffolds for bone regeneration | 2016 | Proceedings of the 2nd International Conference on Progress in Additive Manufacturing (Pro-AM 2016)? | conference | DOI?? |
| Visscher, D.O., Farré-Guasch, E., Helder, M.N., Gibbs, S., Forouzanfar, T., van Zuijlen, P.P. and Wolff, J. | Advances in Bioprinting Technologies for Craniofacial Reconstruction | 2016 | Trends in Biotechnology Vol. 34(9), pp. 700-710? |
article | DOI?? |
| Suntornnond, R., Tan, E.Y.S., An, J. and Chua, C.K. | A Mathematical Model on the Resolution of Extrusion Bioprinting for the Development of New Bioinks | 2016 | Materials Vol. 9(9), pp. 756? |
article | DOIURL? |
| Suntornnond, R., An, J. and Chua, C.K. | A Preliminary Study on the Extrusion Resolution of Pluronic F127 for Bioprinting Thermo-responsive Hydrogel Constructs | 2016 | Proceedings of the 2nd International Conference on Progress in Additive Manufacturing (Pro-AM 2016)? | conference | URL? |
| Sommer, M.R., Schaffner, M., Carnelli, D. and Studart, A.R. | 3D Printing of Hierarchical Silk Fibroin Structures | 2016 | ACS Applied Materials & Interfaces Vol. 8(50), pp. 34677-34685? |
article | DOI?? |
| Ruiz-Cantu, L., Gleadall, A., Faris, C., Segal, J., Shakesheff, K. and Yang, J. | Characterisation of the surface structure of 3D printed scaffolds for cell infiltration and surgical suturing | 2016 | Biofabrication Vol. 8(1), pp. 015016? |
article | URL? |
| Raphael, B., Khalil, T., Workman, V.L., Smith, A., Brown, C.P., Streulli, C., Saiani, A. and Domingos, M. | 3D cell bioprinting of self-assembling peptide-based hydrogels | 2016 | Materials Letters? | article | DOIURL? |
| Passamai, V.E., Dernowsek, J.A., Nogueira, J., Lara, V., Vilalba, F., Mironov, V.A., Rezende, R.A. and da Silva, J.V. | From 3D Bioprinters to a fully integrated Organ Biofabrication Line | 2016 | Journal of Physics: Conference Series Vol. 705(1), pp. 012010? |
article | URL? |
| Ozbolat, I.T., Peng, W. and Ozbolat, V. | Application areas of 3D bioprinting | 2016 | Drug Discovery Today Vol. 21(8), pp. 1257-1271? |
article | DOIURL? |
| Ozbolat, I.T., Moncal, K.K. and Gudapati, H. | Evaluation of bioprinter technologies | 2016 | Additive Manufacturing? | article | DOIURL? |
| Ozbolat, I.T. and Hospodiuk, M. | Current advances and future perspectives in extrusion-based bioprinting | 2016 | Biomaterials Vol. 76, pp. 321-343? |
article | DOIURL? |
| Ng, W.L., Yeong, W.Y. and Naing, M.W. | Polyelectrolyte gelatin-chitosan hydrogel optimized for 3D bioprinting in skin tissue engineering | 2016 | International Journal of Bioprinting Vol. 2(1)? |
article | DOIURL? |
| Müller, M., ?ztürk, E., Arlov, ?., Gatenholm, P. and Zenobi-Wong, M. | Alginate Sulfate--Nanocellulose Bioinks for Cartilage Bioprinting Applications | 2016 | Annals of Biomedical Engineering, pp. 1-14? | article | DOI?? |
| Minas, C., Carnelli, D., Tervoort, E. and Studart, A.R. | 3D Printing of Emulsions and Foams into Hierarchical Porous Ceramics | 2016 | Advanced Materials Vol. 28(45), pp. 9993-9999? |
article | DOI?? |
| Melchels, F.P.W., Blokzijl, M.M., Levato, R., Peiffer, Q.C., de Ruijter, M., Hennink, W.E., Vermonden, T. and Malda, J. | Hydrogel-based reinforcement of 3D bioprinted constructs | 2016 | Biofabrication Vol. 8(3), pp. 035004? |
article | URL? |
| Hou, X., Liu, S., Wang, M., Wiraja, C., Huang, W., Chan, P., Tan, T. and Xu, C. | Layer-by-Layer 3D Constructs of Fibroblasts in Hydrogel for Examining Transdermal Penetration Capability of Nanoparticles | 2016 | Journal of Laboratory Automation? | article | DOIURL? |
| H?lzl, K., Lin, S., Tytgat, L., Vlierberghe, S.V., Gu, L. and Ovsianikov, A. | Bioink properties before, during and after 3D bioprinting | 2016 | Biofabrication Vol. 8(3), pp. 032002? |
article | URL? |
| Heinzelmann, E. | Olten Meeting 2015 Antibiotics and Bioprinting for a better life | 2016 | CHIMIA International Journal for Chemistry Vol. 70(1), pp. 112-115? |
article | DOIURL? |
| H?kansson, K.M.O., Henriksson, I.C., de la Pe?a Vázquez, C., Kuzmenko, V., Markstedt, K., Enoksson, P. and Gatenholm, P. | Solidification of 3D Printed Nanofibril Hydrogels into Functional 3D Cellulose Structures | 2016 | Advanced Materials Technologies Vol. 1(7), pp. 1600096-n/a? |
article | DOI?? |
| Gu, B.K., Choi, D.J., Park, S.J., Kim, M.S., Kang, C.M. and Kim, C.-H. | 3-dimensional bioprinting for tissue engineering applications | 2016 | Biomaterials Research Vol. 20(1), pp. 12? |
article | DOI?? |
| Gross, B., Lockwood, S.Y. and Spence, D.M. | Recent Advances in Analytical Chemistry by 3D Printing
[BibTeX] |
2016 | Analytical Chemistry Vol. 0(0)? |
article | DOI?? |
| Geven, M.A., Sprecher, C., Guillaume, O., Eglin, D. and Grijpma, D.W. | Micro-porous composite scaffolds of photo-crosslinked poly(trimethylene carbonate) and nano-hydroxyapatite prepared by low-temperature extrusion-based additive manufacturing | 2016 | Polymers for Advanced Technologies? | article | DOI?? |
| Daly, A.C., Cunniffe, G.M., Sathy, B.N., Jeon, O., Alsberg, E. and Kelly, D.J. | 3D Bioprinting of Developmentally Inspired Templates for Whole Bone Organ Engineering | 2016 | Advanced Healthcare Materials Vol. 5(18), pp. 2353-2362? |
article | DOI?? |
| Daly, A.C., Critchley, S.E., Rencsok, E.M. and Kelly, D.J. | A comparison of different bioinks for 3D bioprinting of fibrocartilage and hyaline cartilage | 2016 | Biofabrication Vol. 8(4), pp. 045002? |
article | URL? |
| Carrel, J., Wiskott, A., Scherrer, S. and Durual, S. | Large Bone Vertical Augmentation Using a Three‐Dimensional Printed TCP/HA Bone Graft: A Pilot Study in Dog Mandible | 2016 | Clinical Implant Dentistry and Related Research Vol. 18(6), pp. 1183-1192? |
article | DOI?? |
| Caetano, G., Violante, R., Sant’Ana, A.B., Murashima, A.B., Domingos, M., Gibson, A., Bártolo, P. and Frade, M.A. | Cellularized versus decellularized scaffolds for bone regeneration | 2016 | Materials Letters Vol. 182, pp. 318-322? |
article | DOIURL? |
| ávila, H.M., Schwarz, S., Rotter, N. and Gatenholm, P. | 3D bioprinting of human chondrocyte-laden nanocellulose hydrogels for patient-specific auricular cartilage regeneration | 2016 | Bioprinting Vol. 1–2, pp. 22-35? |
article | DOIURL? |
| Arslan-Yildiz, A., Assal, R.E., Chen, P., Guven, S., Inci, F. and Demirci, U. | Towards artificial tissue models: past, present, and future of 3D bioprinting | 2016 | Biofabrication Vol. 8(1), pp. 014103? |
article | URL? |
| Abbadessa, A., Mouser, V.H.M., Blokzijl, M.M., Gawlitta, D., Dhert, W.J.A., Hennink, W.E., Malda, J. and Vermonden, T. | A Synthetic Thermosensitive Hydrogel for Cartilage Bioprinting and Its Biofunctionalization with Polysaccharides | 2016 | Biomacromolecules Vol. 17(6), pp. 2137-2147? |
article | DOI?? |
| Abbadessa, A., Blokzijl, M., Mouser, V., Marica, P., Malda, J., Hennink, W. and Vermonden, T. | A thermo-responsive and photo-polymerizable chondroitin sulfate-based hydrogel for 3D printing applications | 2016 | Carbohydrate Polymers Vol. 149, pp. 163-174? |
article | DOIURL? |
| Kokkinis, D., Schaffner, M. and Studart, A.R. | Multimaterial magnetically assisted 3D printing of composite materials
[BibTeX] |
2015 | Nature Communications Vol. 6, pp. 8643? |
article | DOI?? |
| Rimann, M., Bono, E., Annaheim, H., Bleisch, M. and Graf-Hausner, U. | Standardized 3D Bioprinting of Soft Tissue Models with Human Primary Cells. | 2015 | Journal of laboratory automation Vol. 21, pp. 496-509? |
article | DOI?? |
| Ho, C.M.B., Ng, S.H. and Yoon, Y.-J. | A review on 3D printed bioimplants | 2015 | International Journal of Precision Engineering and Manufacturing Vol. 16(5), pp. 1035-1046? |
article | DOI?? |
| Moussa, M., Carrel, J.-P., Scherrer, S., Cattani-Lorente, M., Wiskott, A. and Durual, S. | Medium-Term Function of a 3D Printed TCP/HA Structure as a New Osteoconductive Scaffold for Vertical Bone Augmentation: A Simulation by BMP-2 Activation | 2015 | Materials Vol. 8Materials, pp. 2174? |
article | DOIURL? |
| Markstedt, K., Mantas, A., Tournier, I., Martínez ávila, H., H?gg, D. and Gatenholm, P. | 3D Bioprinting Human Chondrocytes with Nanocellulose-Alginate Bioink for Cartilage Tissue Engineering Applications | 2015 | Biomacromolecules Vol. 16(5), pp. 1489-1496? |
article | DOI?? |
| Knoll, S. | Niere aus dem Drucker? Sag niemals nie | 2015 | Medizin&Technik Vol. 01(02), pp. 44-47? |
article | URL? |
| Rimann, M., Laternser, S., Keller, H., Leupin, O. and Graf-Hausner, U. | 3D Bioprinted Muscle and Tendon Tissues for Drug Development
[BibTeX] |
2015 | CHIMIA International Journal for Chemistry Vol. 69(1), pp. 65-67? |
article | DOI?? |
| Horvath, L., Umehara, Y., Jud, C., Blank, F., Petri-Fink, A. and Rothen-Rutishauser, B. | Engineering an in vitro air-blood barrier by 3D bioprinting. | 2015 | Scientific reports Vol. 5, pp. 7974? |
article | ? |
| Tan, E.Y.S. and Yeong, W.Y. | Concentric bioprinting of alginate-based tubular constructs using multi-nozzle extrusion-based technique | 2015 | International Journal of Bioprinting Vol. 1, pp. 49-56? |
article | ? |
| Schuddeboom, M. | Biofabrication of Perfusable Liver Constructs
[BibTeX] |
2015 | School: Utrecht University - Faculty of Veterinary Medicine? | mastersthesis | URL? |
| Schacht, K., Jüngst, T., Schweinlin, M., Ewald, A., Groll, J. and Scheibel, T. | Biofabrication of Cell-Loaded 3D Spider Silk Constructs | 2015 | Angewandte Chemie International Edition Vol. 54(9), pp. 2816-2820? |
article | DOI?? |
| Müller, M., Becher, J., Schnabelrauch, M. and Zenobi-Wong, M. | Nanostructured Pluronic hydrogels as bioinks for 3D bioprinting | 2015 | Biofabrication Vol. 7(3), pp. 035006? |
article | URL? |
| Khaled, S.A., Burley, J.C., Alexander, M.R., Yang, J. and Roberts, C.J. | 3D printing of tablets containing multiple drugs with defined release profiles | 2015 | International Journal of Pharmaceutics Vol. 494(2), pp. 643-650? |
article | DOIURL? |
| Khaled, S.A., Burley, J.C., Alexander, M.R., Yang, J. and Roberts, C.J. | 3D printing of five-in-one dose combination polypill with defined immediate and sustained release profiles | 2015 | Journal of Controlled Release Vol. 217, pp. 308-314? |
article | DOIURL? |
| Kesti, M., Eberhardt, C., Pagliccia, G., Kenkel, D., Grande, D., Boss, A. and Zenobi-Wong, M. | Bioprinting Complex Cartilaginous Structures with Clinically Compliant Biomaterials | 2015 | Advanced Functional Materials Vol. 25(48), pp. 7406-7417? |
article | DOI?? |
| Hockaday, L. | 3D Bioprinting: A Deliberate Business
[BibTeX] |
2015 | Genetic Engineering & Biotechnology News Vol. 35(1), pp. 14-17? |
article | DOI?? |
| Graf-Hausner, U., Rimann, M., Bono, E., Laternser, S. and Bleisch, M. | A novel multiwell device for drug development with bioprinted 3D human tendon and skeletal muscle tissues | 2015 | ? | poster | URL? |
| Chee Kai Chua, K.F.L. | 3D Printing and Additive Manufacturing
[BibTeX] |
2014 | ? | book | URL? |
| Rimann, M. and Graf-Hausner, U. | Bioprinting und in vitro-Modelle zur Wirkstoffentwicklung | 2014 | ? | poster | URL? |
| Markstedt, K., Tournier, I., Mantas, A., H?gg, D. and Gatenholm, P. | 3D BIOPRINTING OF LIVING TISSUE WITH NANOCELLULOSE “INK”- CELLINK | 2014 | ? | poster | ? |
| Kesti, M., Müller, M., Becher, J., Schnabelrauch, M., D’Este, M., Eglin, D. and Zenobi-Wong, M. | A versatile bioink for three-dimensional printing of cellular scaffolds based on thermally and photo-triggered tandem gelation | 2014 | Acta Biomaterialia Vol. 11, pp. 162-172? |
article | DOIURL? |
| Carrel, J.-P., Wiskott, A., Moussa, M., Rieder, P., Scherrer, S. and Durual, S. | A 3D printed TCP/HA structure as a new osteoconductive scaffold for vertical bone augmentation | 2014 | Clinical Oral Implants Research Vol. 27(1), pp. 55-62? |
article | DO |
| Rezende, R.A., Selishchev, S.V., Kasyanov, V.A., da Silva, J.V.L. and Mironov, V.A. | An Organ Biofabrication Line: Enabling Technology for Organ Printing. Part II: from Encapsulators to Biofabrication Line | 2013 | Biomedical Engineering Vol. 47(4), pp. 213-218? |
article | DOI?? |
| Müller, M., Becher, J., Schnabelrauch, M. and Zenobi-Wong, M. | Printing thermoresponsive reverse molds for the creation of patterned two-component hydrogels for 3D cell culture. | 2013 | Journal of visualized experiments : JoVE, pp. 1-9? | article | URL? |
| RegenHU | Product information: 3D organomimetic models for tissue engineering
[BibTeX] |
2013 | Biotechnology Journal Vol. 8(3), pp. 283-283? |
article | DOI?? |
| Müller, M., Studer, D., Maniura-Weber, K. and Zenobi-Wong, M. | Novel bioprinted co-culture system fro investigating chondrogenesis
[BibTeX] |
2012 | ? | poster | ? |
| Graf-Hausner, U., Rimann, M. and Annaheim, H. | Skin Bioprinting: an innovative approach to produce standardized skin models on demand | 2012 | ? | poster | URL? |
| Bleisch, M., Kuster, M., Thurner, M., Meier, C., Bossen, A. and Graf-Hausner, U. | Organomimetic skin model production based on a novel bioprinting technology | 2012 | ? | poster | URL |
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