Kitsaraa M, Kontziampasisb D, Agbuluta O, Chenc Y (2019) Heart on a chip: micro-
nanofabrication
and
microfluidics
steering
the
future
of
cardiac
tissue
engineering.
Microelectron Eng 203–204:44–62
Lammertsma
AA
(2002)
Radioligand
studies:
imaging
and
quantitative
analysis.
Eur
Neuropsychopharmacol 12(6):513
Liu H et al (2020) Heart-on-a-chip model with integrated extra- and intracellular bioelectronics for
monitoring cardiac electrophysiology under acute hypoxia. Nano Lett 20(4):2585
Lopatkin AJ, Collins JJ (2020) Predictive biology: modelling, understanding and harnessing
microbial complexity. Nat Rev Microbiol 18:507–520
Louridas GE, Kanonidis IE, Lourida KG (2010) Systems biology in heart diseases. Hippokratia 14:
10–16
Ma J, Wang Y, Liu J (2017) Biomaterials meet microfluidics: from synthesis technologies to
biological applications. Micromachines 8(255):1–29
Marsano A et al (2016) Beating heart on a chip: a novel microfluidic platform to generate functional
3D cardiac microtissues. Lab Chip 16:599
Moody JB, Ficaro EP, Murthy VL (2020) Simplified quantification of PET myocardial blood flow:
the need for technical standardization. J Nucl Cardiol 27:829–832
Nabel EG (2003) Cardiovascular disease. N Engl J Med 349:60–72
Nesterov SV et al (2016) The status and future of PET myocardial blood flow quantification
software. Ann Nucl Cardiol 2(1):106–110
PMOD. https://www.pmod.com/web/?page_id¼966
Rems L, Durgesh Kawale L, Lee J, Boukany PE (2016) Flow of DNA in micro/nanofluidics: from
fundamentals to applications. Biomicrofluidics 10(043403):1–27
Renkin EM (1959) Transport of potassium-42 from blood to tissue in isolated mammalian skeletal
muscle. Am J Phys 197(6):1205–1210
Selimović S, Dokmeci MR, Khademhosseini A (2013) Organs-on-a-chip for drug discovery. Curr
Opin Pharmacol 13:829–833
Shahzadi S et al (2021) 3D bioprinting–a step towards heart tissue regeneration. J Appl Biotechnol
Bioeng 8(1):16
Sidorov VY et al (2017) I-Wire Heart-on-Chip I: three-dimensional cardiac tissue constructs for
physiology and pharmacology. Acta Biomater 48:68
Tankeshwar K, Srivastava S (2007) Dynamical model for restricted diffusion in nano-channels.
Nanotechnology 18(485714):1–4
Turku PET Centre (n.d.). www.turkupetcentre.net/petanalysis. Accessed 20 April 2021.
Ugolini GS et al (2017) Tailoring cardiac environment in microphysiological systems: an outlook
on current and perspective heart-on-chip platforms. Future Sci OA 3(2):FSO191
Veldhuizen J, Cutts J, Brafman DA, Migrino RQ, Nikkhah M (2020) Engineering anisotropic
human stem cell-derived three-dimensional cardiac tissue on-a-chip. Biomaterials 256:120195
Waller AH, Blankstein R, Kwong RY, Di Carli MF (2014) Myocardial blood flow quantification for
evaluation of coronary artery disease by positron emission tomography, cardiac magnetic
resonance imaging, and computed tomography. Curr Cardiol Rep 16(5):483
Zhang Q, Austin RH (2012) Applications of microfluidics in stem cell biology. Bionanoscience
2(4):277–286
Zhang B, Radisic M (2017) Organ-on-a-chip devices advance to market. Lab Chip 17(14):2395
Zhang M-J et al (2020) Controllable microfluidic fabrication of microstructured functional
materials. Biomicrofluidics 14(061501):1–14
302
K. Tankeshwar and S. Srivastava