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020 ▼a 9780438091641
035 ▼a (MiAaPQ)AAI10871386
035 ▼a (MiAaPQ)OhioLINK:osu1482945107612275
040 ▼a MiAaPQ ▼c MiAaPQ ▼d 248032
0491 ▼f DP
0820 ▼a 610
1001 ▼a Agarwal, Pranay.
24510 ▼a Multiscale Biomaterials for Cell and Tissue Engineering.
260 ▼a [S.l.] : ▼b The Ohio State University., ▼c 2017
260 1 ▼a Ann Arbor : ▼b ProQuest Dissertations & Theses, ▼c 2017
300 ▼a 182 p.
500 ▼a Source: Dissertation Abstracts International, Volume: 79-10(E), Section: B.
500 ▼a Adviser: Xiaoming He.
5021 ▼a Thesis (Ph.D.)--The Ohio State University, 2017.
520 ▼a The aim of tissue engineering is to fabricate functional tissue constructs for treating diseases. Contemporary approach for tissue engineering is to embed cells in homogenous three-dimensional (3D) macroscopic scaffolds for mimicking the functio
520 ▼a First, the development of a novel non-planar microfluidic flow-focusing device for high-throughput encapsulation of mouse embryonic stem cells (mESCs) in a liquid core of microcapsules with an alginate hydrogel shell is reported. Using the non-p
520 ▼a Next, a bottom-up approach for fabricating 3D vascularized human breast tumor model with the core-shell microencapsulation technology is developed. Microtumors (i.e., 3D aggregates of cancer cells) are generated in core-shell microcapsules and u
520 ▼a To conclude, this dissertation work demonstrates how microscale encapsulation of cells via microfluidics provides a powerful suite of tools to engineering the cellular microenvironment at micro and macro scales. The technologies and systems desc
590 ▼a School code: 0168.
650 4 ▼a Biomedical engineering.
650 4 ▼a Medicine.
690 ▼a 0541
690 ▼a 0564
71020 ▼a The Ohio State University. ▼b Biomedical Engineering.
7730 ▼t Dissertation Abstracts International ▼g 79-10B(E).
773 ▼t Dissertation Abstract International
790 ▼a 0168
791 ▼a Ph.D.
792 ▼a 2017
793 ▼a English
85640 ▼u http://www.riss.kr/pdu/ddodLink.do?id=T15000225 ▼n KERIS
980 ▼a 201812 ▼f 2019
990 ▼a 관리자 ▼b 관리자