Department of Biotechnology and Food Microbiology, Poznan University of Life Sciences, 60‑637, Poznań, Poland.
Microb Cell Fact. 2024 Jun 24;23(1):184. doi: 10.1186/s12934-024-02465-3.
With the current progress in the 'design' and 'build' stages of the 'design-build-test-learn' cycle, many synthetic biology projects become 'test-limited'. Advances in the parallelization of microbes cultivations are of great aid, however, for many species down-scaling leaves a metabolic footprint. Yarrowia lipolytica is one such demanding yeast species, for which scaling-down inevitably leads to perturbations in phenotype development. Strictly aerobic metabolism, propensity for filamentation and adhesion to hydrophobic surfaces, spontaneous flocculation, and high acidification of media are just several characteristics that make the transfer of the micro-scale protocols developed for the other microbial species very challenging in this case. It is well recognized that without additional 'personalized' optimization, either MTP-based or single-cell-based protocols are useless for accurate studies of Y. lipolytica phenotypes. This review summarizes the progress in the scaling-down and parallelization of Y. lipolytica cultures, highlighting the challenges that occur most frequently and strategies for their overcoming. The problem of Y. lipolytica cultures down-scaling is illustrated by calculating the costs of micro-cultivations, and determining the unintentionally introduced, thus uncontrolled, variables. The key research into culturing Y. lipolytica in various MTP formats and micro- and pico-bioreactors is discussed. Own recently developed and carefully pre-optimized high-throughput cultivation protocol is presented, alongside the details from the optimization stage. We hope that this work will serve as a practical guide for those working with Y. lipolytica high-throughput screens.
随着“设计-建造-测试-学习”循环的“设计”和“建造”阶段的当前进展,许多合成生物学项目变得“受限于测试”。微生物培养的并行化进步有很大帮助,然而,对于许多物种来说,缩小规模会留下代谢足迹。解脂耶氏酵母就是这样一种要求苛刻的酵母物种,缩小规模不可避免地会导致表型发育的干扰。严格的需氧代谢、丝状化和对疏水性表面的附着倾向、自发絮凝以及培养基的高度酸化只是几个特点,使得为其他微生物物种开发的微尺度方案在这种情况下很难转移。人们普遍认识到,如果没有额外的“个性化”优化,基于微流控技术的或单细胞的方案对于准确研究解脂耶氏酵母的表型都是无用的。这篇综述总结了解脂耶氏酵母培养物的缩小规模和并行化的进展,强调了最常出现的挑战以及克服这些挑战的策略。通过计算微培养的成本,并确定无意引入的、因此无法控制的变量,说明了解脂耶氏酵母培养物缩小规模的问题。讨论了在各种微流控技术格式和微小型生物反应器中培养解脂耶氏酵母的关键研究。介绍了我们最近开发的、经过精心预优化的高通量培养方案,并详细介绍了优化阶段的情况。我们希望这项工作将为那些使用解脂耶氏酵母高通量筛选的人提供实用指南。