lay abstract 2nd revision technical submission.docx from Electrochemical mapping of oxygenation in the three-dimensional multicellular tumour hemi-spheroid Disha B. Sheth Miklόs Gratzl 10.6084/m9.figshare.8153261.v1 https://rs.figshare.com/articles/journal_contribution/lay_abstract_2nd_revision_technical_submission_docx_from_Electrochemical_mapping_of_oxygenation_in_the_three-dimensional_multicellular_tumour_hemi-spheroid/8153261 Blood capillaries deliver oxygen and nutrients to surrounding micro-regions of tissue and carry away metabolic waste. In normal tissue, capillaries are close enough to keep all the cells viable. In solid tumours, the capillary system is chaotic and typical inter-capillary distances are larger than in normal tissue. Therefore, hypoxic regions develop. Drug molecules may not reach these areas at concentrations above the lethal level. The combined effect of low drug concentrations and local hypoxia, often exacerbated by acidity, leads to therapy failure. To better understand the interplay between hypoxia and poor drug penetration, oxygenation needs to be assessed in different areas of inter-capillary tissue. The multicellular tumour spheroid is a well-established three-dimensional (3D) <i>in vitro</i> model of the capillary microenvironment. It is used to mimic nascent tumours and micro-metastases as well. In this work, we demonstrate for the first time that dynamic intra-spheroidal oxygen maps can be obtained at the 3D multicellular tumour hemi-spheroid (MCH) using a non-invasive microelectrode array. The same oxygen distributions exist inside the equivalent but less accessible full spheroid. The MCH makes high throughput—high content analysis of spheroids feasible and thus can assist studies on basic cancer biology, drug development and personalized medicine. 2019-05-20 13:26:25 hypoxia in tumour tissue oxygen distribution electrochemical mapping multicellular tumour hemi-spheroid in vitro model of capillary microenvironment in vitro model of micro-metastases