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1.
Curr Biol ; 27(9): 1278-1287, 2017 May 08.
Artigo em Inglês | MEDLINE | ID: mdl-28416114

RESUMO

It is generally assumed that the allocation and synthesis of total cellular resources in microorganisms are uniquely determined by the growth conditions. Adaptation to a new physiological state leads to a change in cell size via reallocation of cellular resources. However, it has not been understood how cell size is coordinated with biosynthesis and robustly adapts to physiological states. We show that cell size in Escherichia coli can be predicted for any steady-state condition by projecting all biosynthesis into three measurable variables representing replication initiation, replication-division cycle, and the global biosynthesis rate. These variables can be decoupled by selectively controlling their respective core biosynthesis using CRISPR interference and antibiotics, verifying our predictions that different physiological states can result in the same cell size. We performed extensive growth inhibition experiments, and we discovered that cell size at replication initiation per origin, namely the initiation mass or unit cell, is remarkably invariant under perturbations targeting transcription, translation, ribosome content, replication kinetics, fatty acid and cell wall synthesis, cell division, and cell shape. Based on this invariance and balanced resource allocation, we explain why the total cell size is the sum of all unit cells. These results provide an overarching framework with quantitative predictive power over cell size in bacteria.


Assuntos
Replicação do DNA , Proteínas de Escherichia coli/metabolismo , Escherichia coli/citologia , Escherichia coli/fisiologia , Antibacterianos/farmacologia , Ciclo Celular , Cromossomos Bacterianos , Repetições Palindrômicas Curtas Agrupadas e Regularmente Espaçadas , Escherichia coli/efeitos dos fármacos , Escherichia coli/crescimento & desenvolvimento , Proteínas de Escherichia coli/antagonistas & inibidores , Proteínas de Escherichia coli/genética , Cinética , Ribossomos/metabolismo
2.
Sci Rep ; 6: 39076, 2016 12 20.
Artigo em Inglês | MEDLINE | ID: mdl-27996021

RESUMO

The ability to control the level of gene expression is a major quest in biology. A widely used approach employs deletion of a nonessential gene of interest (knockout), or multi-step recombineering to move a gene of interest under a repressible promoter (knockdown). However, these genetic methods are laborious, and limited for quantitative study. Here, we report a tunable CRISPR-cas system, "tCRISPRi", for precise and continuous titration of gene expression by more than 30-fold. Our tCRISPRi system employs various previous advancements into a single strain: (1) We constructed a new strain containing a tunable arabinose operon promoter PBAD to quantitatively control the expression of CRISPR-(d)Cas protein over two orders of magnitude in a plasmid-free system. (2) tCRISPRi is reversible, and gene expression is repressed under knockdown conditions. (3) tCRISPRi shows significantly less than 10% leaky expression. (4) Most important from a practical perspective, construction of tCRISPRi to target a new gene requires only one-step of oligo recombineering. Our results show that tCRISPRi, in combination with recombineering, provides a simple and easy-to-implement tool for gene expression control, and is ideally suited for construction of both individual strains and high-throughput tunable knockdown libraries.


Assuntos
Arabinose/metabolismo , Expressão Gênica , Engenharia Genética/métodos , Óperon , Proteínas de Bactérias/genética , Sistemas CRISPR-Cas , Regulação Bacteriana da Expressão Gênica , Técnicas de Inativação de Genes , Regiões Promotoras Genéticas
3.
Nat Commun ; 5: 5737, 2014 Dec 17.
Artigo em Inglês | MEDLINE | ID: mdl-25517430

RESUMO

The temperature-jump technique, in which the sample is rapidly heated by a powerful laser pulse, has been widely used to probe the fast dynamics of folding of proteins and nucleic acids. However, the existing temperature-jump setups tend to involve sophisticated and expensive instrumentation, while providing only modest temperature changes of ~10-15 °C, and the temperature changes are only rapid for heating, but not cooling. Here we present a setup comprising a thermally conductive sapphire substrate with light-absorptive nano-coating, a microfluidic device and a rapidly switched moderate-power infrared laser with the laser beam focused on the nano-coating, enabling heating and cooling of aqueous solutions by ~50 °C on a 1-µs time scale. The setup is used to probe folding and unfolding dynamics of DNA hairpins after direct and inverse temperature jumps, revealing low-pass filter behaviour during periodic temperature variations.


Assuntos
DNA/química , Sequências Repetidas Invertidas , Técnicas Analíticas Microfluídicas/instrumentação , Simulação de Dinâmica Molecular , Temperatura Baixa , Temperatura Alta , Cinética , Lasers , Luz , Conformação de Ácido Nucleico , Fatores de Tempo
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