Lygate Craig A
Division of Cardiovascular Medicine, Radcliffe Department of Medicine, Wellcome Centre for Human Genetics, University of Oxford, Oxford, United Kingdom.
Front Physiol. 2021 May 14;12:685064. doi: 10.3389/fphys.2021.685064. eCollection 2021.
In order to fully understand gene function, at some point, it is necessary to study the effects in an intact organism. The creation of the first knockout mouse in the late 1980's gave rise to a revolution in the field of integrative physiology that continues to this day. There are many complex choices when selecting a strategy for genetic modification, some of which will be touched on in this review, but the principal focus is to highlight the potential problems and pitfalls arising from the interpretation of cardiac phenotypes. As an exemplar, we will scrutinize the field of cardiac energetics and the attempts to understand the role of the creatine kinase (CK) energy buffering and transport system in the intact organism. This story highlights the confounding effects of genetic background, sex, and age, as well as the difficulties in interpreting knockout models in light of promiscuous proteins and metabolic redundancy. It will consider the dose-dependent effects and unintended consequences of transgene overexpression, and the need for experimental rigour in the context of phenotyping techniques. It is intended that this review will not only bring clarity to the field of cardiac energetics, but also aid the non-expert in evaluating and critically assessing data arising from genetic modification.
为了全面了解基因功能,在某个阶段,有必要在完整生物体中研究其作用。20世纪80年代末首例基因敲除小鼠的诞生引发了整合生理学领域的一场革命,这场革命一直持续至今。在选择基因改造策略时,有许多复杂的选择,本文将涉及其中一些,但主要重点是突出因心脏表型解读而产生的潜在问题和陷阱。作为一个例子,我们将审视心脏能量学领域以及在完整生物体中理解肌酸激酶(CK)能量缓冲和转运系统作用的尝试。这个例子突出了遗传背景、性别和年龄的混杂效应,以及鉴于蛋白质的混杂性和代谢冗余性在解释基因敲除模型时所面临的困难。它将考虑转基因过度表达的剂量依赖性效应和意外后果,以及在表型分析技术背景下实验严谨性的必要性。本文旨在不仅为心脏能量学领域带来清晰认识,还能帮助非专业人士评估和批判性地评估基因改造产生的数据。