Literature DB >> 23828456

Scaling and systems biology for integrating multiple organs-on-a-chip.

John P Wikswo1, Erica L Curtis, Zachary E Eagleton, Brian C Evans, Ayeeshik Kole, Lucas H Hofmeister, William J Matloff.   

Abstract

Coupled systems of in vitro microfabricated organs-on-a-chip containing small populations of human cells are being developed to address the formidable pharmacological and physiological gaps between monolayer cell cultures, animal models, and humans that severely limit the speed and efficiency of drug development. These gaps present challenges not only in tissue and microfluidic engineering, but also in systems biology: how does one model, test, and learn about the communication and control of biological systems with individual organs-on-chips that are one-thousandth or one-millionth of the size of adult organs, or even smaller, i.e., organs for a milliHuman (mHu) or microHuman (μHu)? Allometric scaling that describes inter-species variation of organ size and properties provides some guidance, but given the desire to utilize these systems to extend and validate human pharmacokinetic and pharmacodynamic (PK/PD) models in support of drug discovery and development, it is more appropriate to scale each organ functionally to ensure that it makes the suitable physiological contribution to the coupled system. The desire to recapitulate the complex organ-organ interactions that result from factors in the blood and lymph places a severe constraint on the total circulating fluid (~5 mL for a mHu and ~5 μL for a μHu) and hence on the pumps, valves, and analytical instruments required to maintain and study these systems. Scaling arguments also provide guidance on the design of a universal cell-culture medium, typically without red blood cells. This review presents several examples of scaling arguments and discusses steps that should ensure the success of this endeavour.

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Year:  2013        PMID: 23828456      PMCID: PMC3818688          DOI: 10.1039/c3lc50243k

Source DB:  PubMed          Journal:  Lab Chip        ISSN: 1473-0189            Impact factor:   6.799


  124 in total

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Journal:  Lab Chip       Date:  2011-11-10       Impact factor: 6.799

Review 2.  Cardiac endothelial-myocardial signaling: its role in cardiac growth, contractile performance, and rhythmicity.

Authors:  Dirk L Brutsaert
Journal:  Physiol Rev       Date:  2003-01       Impact factor: 37.312

3.  Intra-alveolar macrophage numbers in current smokers and non-smokers: a morphometric study of tissue sections.

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Review 4.  Engineering challenges of BioNEMS: the integration of microfluidics, micro- and nanodevices, models and external control for systems biology.

Authors:  J P Wikswo; A Prokop; F Baudenbacher; D Cliffel; B Csukas; M Velkovsky
Journal:  IEE Proc Nanobiotechnol       Date:  2006-08

Review 5.  The pericyte--a review.

Authors:  D E Sims
Journal:  Tissue Cell       Date:  1986       Impact factor: 2.466

6.  Determination of the hepatocellularity number for human, dog, rabbit, rat and mouse livers from protein concentration measurements.

Authors:  Anna-Karin Sohlenius-Sternbeck
Journal:  Toxicol In Vitro       Date:  2006-06-29       Impact factor: 3.500

7.  A unified model for predicting human hepatic, metabolic clearance from in vitro intrinsic clearance data in hepatocytes and microsomes.

Authors:  Robert J Riley; D F McGinnity; R P Austin
Journal:  Drug Metab Dispos       Date:  2005-06-02       Impact factor: 3.922

8.  Scaling down of a clinical three-dimensional perfusion multicompartment hollow fiber liver bioreactor developed for extracorporeal liver support to an analytical scale device useful for hepatic pharmacological in vitro studies.

Authors:  Katrin Zeilinger; Thomas Schreiter; Malin Darnell; Therese Söderdahl; Marc Lübberstedt; Birgitta Dillner; Daniel Knobeloch; Andreas K Nüssler; Jörg C Gerlach; Tommy B Andersson
Journal:  Tissue Eng Part C Methods       Date:  2011-02-16       Impact factor: 3.056

9.  A printed superoxide dismutase coated electrode for the study of macrophage oxidative burst.

Authors:  Leslie A Hiatt; Jennifer R McKenzie; Leila F Deravi; Reese S Harry; David W Wright; David E Cliffel
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10.  Database of normal human cerebral blood flow, cerebral blood volume, cerebral oxygen extraction fraction and cerebral metabolic rate of oxygen measured by positron emission tomography with 15O-labelled carbon dioxide or water, carbon monoxide and oxygen: a multicentre study in Japan.

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Journal:  Eur J Nucl Med Mol Imaging       Date:  2004-01-17       Impact factor: 9.236

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  114 in total

1.  Human stroma and epithelium co-culture in a microfluidic model of a human prostate gland.

Authors:  L Jiang; F Ivich; S Tahsin; M Tran; S B Frank; C K Miranti; Y Zohar
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2.  Scalable Fabrication of Stretchable, Dual Channel, Microfluidic Organ Chips.

Authors:  Richard Novak; Meredyth Didier; Elizabeth Calamari; Carlos F Ng; Youngjae Choe; Susan L Clauson; Bret A Nestor; Jefferson Puerta; Rachel Fleming; Sasan J Firoozinezhad; Donald E Ingber
Journal:  J Vis Exp       Date:  2018-10-20       Impact factor: 1.355

3.  Multi-functional scaling methodology for translational pharmacokinetic and pharmacodynamic applications using integrated microphysiological systems (MPS).

Authors:  Christian Maass; Cynthia L Stokes; Linda G Griffith; Murat Cirit
Journal:  Integr Biol (Camb)       Date:  2017-04-18       Impact factor: 2.192

4.  Building an experimental model of the human body with non-physiological parameters.

Authors:  Joseph M Labuz; Christopher Moraes; David R Mertz; Brendan M Leung; Shuichi Takayama
Journal:  Technology (Singap World Sci)       Date:  2017-03-31

Review 5.  Using physiologically-based pharmacokinetic-guided "body-on-a-chip" systems to predict mammalian response to drug and chemical exposure.

Authors:  Jong Hwan Sung; Balaji Srinivasan; Mandy Brigitte Esch; William T McLamb; Catia Bernabini; Michael L Shuler; James J Hickman
Journal:  Exp Biol Med (Maywood)       Date:  2014-06-20

6.  Robust fluidic connections to freestanding microfluidic hydrogels.

Authors:  Shannon L Faley; Bradly B Baer; Taylor S H Larsen; Leon M Bellan
Journal:  Biomicrofluidics       Date:  2015-05-20       Impact factor: 2.800

7.  Diffusion phenomena of cells and biomolecules in microfluidic devices.

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Journal:  Biomicrofluidics       Date:  2015-07-01       Impact factor: 2.800

8.  Artificial organs: Honey, I shrunk the lungs.

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9.  A cost-effective fluorescence mini-microscope for biomedical applications.

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Journal:  Lab Chip       Date:  2015       Impact factor: 6.799

10.  Recreating blood-brain barrier physiology and structure on chip: A novel neurovascular microfluidic bioreactor.

Authors:  Jacquelyn A Brown; Virginia Pensabene; Dmitry A Markov; Vanessa Allwardt; M Diana Neely; Mingjian Shi; Clayton M Britt; Orlando S Hoilett; Qing Yang; Bryson M Brewer; Philip C Samson; Lisa J McCawley; James M May; Donna J Webb; Deyu Li; Aaron B Bowman; Ronald S Reiserer; John P Wikswo
Journal:  Biomicrofluidics       Date:  2015-10-26       Impact factor: 2.800

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