Literature DB >> 29596037

Tissue Engineering Under Microgravity Conditions-Use of Stem Cells and Specialized Cells.

Daniela Grimm1,2, Marcel Egli3, Marcus Krüger2, Stefan Riwaldt1, Thomas J Corydon1,4, Sascha Kopp2, Markus Wehland2, Petra Wise5, Manfred Infanger2, Vivek Mann6, Alamelu Sundaresan6.   

Abstract

Experimental cell research studying three-dimensional (3D) tissues in space and on Earth using new techniques to simulate microgravity is currently a hot topic in Gravitational Biology and Biomedicine. This review will focus on the current knowledge of the use of stem cells and specialized cells for tissue engineering under simulated microgravity conditions. We will report on recent advancements in the ability to construct 3D aggregates from various cell types using devices originally created to prepare for spaceflights such as the random positioning machine (RPM), the clinostat, or the NASA-developed rotating wall vessel (RWV) bioreactor, to engineer various tissues such as preliminary vessels, eye tissue, bone, cartilage, multicellular cancer spheroids, and others from different cells. In addition, stem cells had been investigated under microgravity for the purpose to engineer adipose tissue, cartilage, or bone. Recent publications have discussed different changes of stem cells when exposed to microgravity and the relevant pathways involved in these biological processes. Tissue engineering in microgravity is a new technique to produce organoids, spheroids, or tissues with and without scaffolds. These 3D aggregates can be used for drug testing studies or for coculture models. Multicellular tumor spheroids may be interesting for radiation experiments in the future and to reduce the need for in vivo experiments. Current achievements using cells from patients engineered on the RWV or on the RPM represent an important step in the advancement of techniques that may be applied in translational Regenerative Medicine.

Entities:  

Keywords:  microgravity; multicellular spheroids; organoids; random positioning machine; rotating wall vessel; spaceflight; stem cells; tissue engineering

Mesh:

Year:  2018        PMID: 29596037     DOI: 10.1089/scd.2017.0242

Source DB:  PubMed          Journal:  Stem Cells Dev        ISSN: 1547-3287            Impact factor:   3.272


  24 in total

1.  Microgravity effects on frozen human sperm samples.

Authors:  M Boada; A Perez-Poch; M Ballester; S García-Monclús; D V González; S García; P N Barri; A Veiga
Journal:  J Assist Reprod Genet       Date:  2020-07-18       Impact factor: 3.412

Review 2.  Joint Cartilage in Long-Duration Spaceflight.

Authors:  Bergita Ganse; Magali Cucchiarini; Henning Madry
Journal:  Biomedicines       Date:  2022-06-08

3.  The individual and combined effects of spaceflight radiation and microgravity on biologic systems and functional outcomes.

Authors:  Jeffrey S Willey; Richard A Britten; Elizabeth Blaber; Candice G T Tahimic; Jeffrey Chancellor; Marie Mortreux; Larry D Sanford; Angela J Kubik; Michael D Delp; Xiao Wen Mao
Journal:  J Environ Sci Health C Toxicol Carcinog       Date:  2021

4.  The Rotary Cell Culture System increases NTRK3 expression and promotes neuronal differentiation and migratory ability of neural stem cells cultured on collagen sponge.

Authors:  Yi Cui; Yanyun Yin; Yunlong Zou; Yannan Zhao; Jin Han; Bai Xu; Bing Chen; Zhifeng Xiao; Hongwei Song; Ya Shi; Weiwei Xue; Xu Ma; Jianwu Dai
Journal:  Stem Cell Res Ther       Date:  2021-05-21       Impact factor: 6.832

Review 5.  Microgravity, Stem Cells, and Cancer: A New Hope for Cancer Treatment.

Authors:  Uğur Topal; Cihan Zamur
Journal:  Stem Cells Int       Date:  2021-04-29       Impact factor: 5.443

Review 6.  Fundamental Biological Features of Spaceflight: Advancing the Field to Enable Deep-Space Exploration.

Authors:  Ebrahim Afshinnekoo; Ryan T Scott; Matthew J MacKay; Eloise Pariset; Egle Cekanaviciute; Richard Barker; Simon Gilroy; Duane Hassane; Scott M Smith; Sara R Zwart; Mayra Nelman-Gonzalez; Brian E Crucian; Sergey A Ponomarev; Oleg I Orlov; Dai Shiba; Masafumi Muratani; Masayuki Yamamoto; Stephanie E Richards; Parag A Vaishampayan; Cem Meydan; Jonathan Foox; Jacqueline Myrrhe; Eric Istasse; Nitin Singh; Kasthuri Venkateswaran; Jessica A Keune; Hami E Ray; Mathias Basner; Jack Miller; Martha Hotz Vitaterna; Deanne M Taylor; Douglas Wallace; Kathleen Rubins; Susan M Bailey; Peter Grabham; Sylvain V Costes; Christopher E Mason; Afshin Beheshti
Journal:  Cell       Date:  2020-11-25       Impact factor: 66.850

7.  The effects of microgravity on differentiation and cell growth in stem cells and cancer stem cells.

Authors:  Daniela Grimm; Markus Wehland; Thomas J Corydon; Peter Richter; Binod Prasad; Johann Bauer; Marcel Egli; Sascha Kopp; Michael Lebert; Marcus Krüger
Journal:  Stem Cells Transl Med       Date:  2020-04-30       Impact factor: 6.940

8.  Tailored generation of insulin producing cells from canine mesenchymal stem cells derived from bone marrow and adipose tissue.

Authors:  Watchareewan Rodprasert; Sirirat Nantavisai; Koranis Pathanachai; Prasit Pavasant; Thanaphum Osathanon; Chenphop Sawangmake
Journal:  Sci Rep       Date:  2021-06-11       Impact factor: 4.379

9.  Engineered Microvessel for Cell Culture in Simulated Microgravity.

Authors:  Mei ElGindi; Ibrahim Hamed Ibrahim; Jiranuwat Sapudom; Anna Garcia-Sabate; Jeremy C M Teo
Journal:  Int J Mol Sci       Date:  2021-06-13       Impact factor: 5.923

10.  Bioinspired Scaffold Action Under the Extreme Physiological Conditions of Simulated Space Flights: Osteogenesis Enhancing Under Microgravity.

Authors:  Elisabetta Avitabile; Laura Fusco; Silvia Minardi; Marco Orecchioni; Barbara Zavan; Acelya Yilmazer; Martina Rauner; Proto Pippia; Ennio Tasciotti; Lucia Gemma Delogu
Journal:  Front Bioeng Biotechnol       Date:  2020-07-08
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