The Replica Set Method is a Robust, Accurate, and High-Throughput Approach for Assessing and Comparing Lifespan in C. elegans Experiments

被引:1
|
作者
Cornwell, Adam [1 ]
Llop, Jesse R. [1 ]
Salzman, Peter [2 ,4 ]
Rasmussen, Niels [1 ]
Thakar, Juilee [1 ,2 ,3 ]
Samuelson, Andrew V. [1 ]
机构
[1] Univ Rochester, Med Ctr, Dept Biomed Genet, Rochester, NY 14627 USA
[2] Univ Rochester, Med Ctr, Dept Biostat & Computat Biol, Rochester, NY USA
[3] Univ Rochester, Med Ctr, Dept Microbiol & Immunol, Rochester, NY USA
[4] Bristol Myers Squibb, Nonclin Stat, Devens, MA USA
来源
FRONTIERS IN AGING | 2022年 / 3卷
基金
美国国家卫生研究院;
关键词
Caenorhabditis elegans; lifespan; survival modeling; biostatistics; high throughput; SYSTEMATIC RNAI SCREEN; INTERVAL-CENSORED-DATA; CAENORHABDITIS-ELEGANS; WILD-TYPE; LONGEVITY; NEMATODE; GOMPERTZ; SURVIVAL; MUTANT; GENES;
D O I
10.3389/fragi.2022.861701
中图分类号
R592 [老年病学]; C [社会科学总论];
学科分类号
03 ; 0303 ; 100203 ;
摘要
The advent of feeding based RNAi in Caenorhabditis elegans led to an era of gene discovery in aging research. Hundreds of gerogenes were discovered, and many are evolutionarily conserved, raising the exciting possibility that the underlying genetic basis for healthy aging in higher vertebrates could be quickly deciphered. Yet, the majority of putative gerogenes have still only been cursorily characterized, highlighting the need for high-throughput, quantitative assessments of changes in aging. A widely used surrogate measure of aging is lifespan. The traditional way to measure mortality in C. elegans tracks the deaths of individual animals over time within a relatively small population. This traditional method provides straightforward, direct measurements of median and maximum lifespan for the sampled population. However, this method is time consuming, often underpowered, and involves repeated handling of a set of animals over time, which in turn can introduce contamination or possibly damage increasingly fragile, aged animals. We have previously developed an alternative "Replica Set" methodology, which minimizes handling and increases throughput by at least an order of magnitude. The Replica Set method allows changes in lifespan to be measured for over one hundred feeding-based RNAi clones by one investigator in a single experiment- facilitating the generation of large quantitative phenotypic datasets, a prerequisite for development of biological models at a systems level. Here, we demonstrate through analysis of lifespan experiments simulated in silico that the Replica Set method is at least as precise and accurate as the traditional method in evaluating and estimating lifespan, and requires many fewer total animal observations across the course of an experiment. Furthermore, we show that the traditional approach to lifespan experiments is more vulnerable than the Replica Set method to experimental and measurement error. We find no compromise in statistical power for Replica Set experiments, even for moderate effect sizes, or when simulated experimental errors are introduced. We compare and contrast the statistical analysis of data generated by the two approaches, and highlight pitfalls common with the traditional methodology. Collectively, our analysis provides a standard of measure for each method across comparable parameters, which will be invaluable in both experimental design and evaluation of published data for lifespan studies.
引用
收藏
页数:21
相关论文
共 50 条
  • [1] The Replica Set Method: A High-throughput Approach to Quantitatively Measure Caenorhabditis elegans Lifespan
    Cornwel, Adam B.
    Llop, Jesse R.
    Salzman, Peter
    Thakar, Juilee
    Samuelson, Andrew, V
    JOVE-JOURNAL OF VISUALIZED EXPERIMENTS, 2018, (136):
  • [2] High-throughput behavioral analysis in C. elegans
    Swierczek, Nicholas A.
    Giles, Andrew C.
    Rankin, Catharine H.
    Kerr, Rex A.
    NATURE METHODS, 2011, 8 (07) : 592 - U112
  • [3] High-throughput behavioral analysis in C. elegans
    Swierczek N.A.
    Giles A.C.
    Rankin C.H.
    Kerr R.A.
    Nature Methods, 2011, 8 (7) : 592 - 602
  • [4] C. elegans in high-throughput drug discovery
    O'Reilly, Linda P.
    Luke, Cliff J.
    Perlmutter, David H.
    Silverman, Gary A.
    Pak, Stephen C.
    ADVANCED DRUG DELIVERY REVIEWS, 2014, 69 : 247 - 253
  • [5] C. elegans: A potent model for high-throughput screening experiments investigating the FLASH effect
    Schoenauen, Lucas
    Stubbe, Francois-Xavier
    Van Gestel, Dirk
    Penninckx, Sebastien
    Heuskin, Anne - Catherine
    CLINICAL AND TRANSLATIONAL RADIATION ONCOLOGY, 2024, 45
  • [6] TRACKING C. ELEGANS SWIMMING FOR HIGH-THROUGHPUT PHENOTYPING
    Restif, Christophe
    Ibanez-Ventoso, Carolina
    Driscoll, Monica
    Metaxas, Dimitris
    2011 8TH IEEE INTERNATIONAL SYMPOSIUM ON BIOMEDICAL IMAGING: FROM NANO TO MACRO, 2011, : 1542 - 1548
  • [7] High-throughput screening in the C. elegans nervous system
    Kinser, Holly E.
    Pincus, Zachary
    MOLECULAR AND CELLULAR NEUROSCIENCE, 2017, 80 : 192 - 197
  • [8] Assessing effects of germline exposure to environmental toxicants by high-throughput screening in C. elegans
    Shin, Nara
    Cuenca, Luciann
    Karthikraj, Rajendiran
    Kannan, Kurunthachalam
    Colaiacovo, Monica P.
    PLOS GENETICS, 2019, 15 (02):
  • [9] Rapid and accurate developmental stage recognition of C. elegans from high-throughput image data
    White, Amelia G.
    Cipriani, Patricia G.
    Kao, Huey-Ling
    Lees, Brandon
    Geiger, Davi
    Sontag, Eduardo
    Gunsalus, Kristin C.
    Piano, Fabio
    2010 IEEE CONFERENCE ON COMPUTER VISION AND PATTERN RECOGNITION (CVPR), 2010, : 3089 - 3096
  • [10] Microfluidic arena for high-throughput C. elegans calcium imaging experiments with multiple strain confinement
    Lanza, Enrico
    Caprini, Davide
    Lucente, Valeria
    Folli, Viola
    2021 IEEE INTERNATIONAL WORKSHOP ON METROLOGY FOR INDUSTRY 4.0 & IOT (IEEE METROIND4.0 & IOT), 2021, : 566 - 571