Literature DB >> 8193215

Cost of growth in cells and organisms: general rules and comparative aspects.

W Wieser1.   

Abstract

In a crude fashion it can be said that metabolizable energy (M) is partitioned into metabolic work, paid for by 'oxidations' (R), and 'assimilation', i.e. production (P), so that M = R+P. However, a fraction of R is required to meet the expenses of production and if these expenses represent, Joule for Joule, a constant proportion of the amount produced, then Rt = Rm+cP, where Rt = total metabolic expenditures, Rm = metabolic expenditures for maintaining the non-producing organism, and cP = Rp = metabolic expenditures connected with the processes of production. The partitioning of metabolizable energy into R and P as well as into Rm and Rp may vary depending on the phylogeny and life-history of the species concerned and on ecological circumstances. Thus selection is expected to act on both ratios, R/P and Rm/Rp. By comparing the ratios P/(P+Rp) (the apparent efficiency of production) and Rp/P (the apparent metabolic cost of production) in different types of organisms, one finds that a value of P/(P+Rp) = 0.75, equal to 75% efficiency, 10 mgdbm/mmol ATP, and 16 mumolO2/mg dbm (when I mg identical to 22 J), can be used as a 'consensus value' for the average efficiency, or cost, of the transformation of metabolizable energy into production in a wide range of organisms, from bacteria to mammals. This value corresponds to about three times the theoretical cost of synthesizing the same amount of tissue on the basis of known biochemical principles. The reasons why the empirical costs of production are higher than the theoretical costs of synthesis by what appears to be a common factor may be quite different in bacteria, small ectothermic and large endothermic organisms. Deviations from the consensus value may be due to differences in energy density of the nutrients assimilated and the tissues synthesized. Further complications arise because of interactions between P, Rp, and Rm. In microorganisms the existence of a constant and a variable component of maintenance metabolism has been postulated, the latter decreasing with increasing rate of production. In small ectothermic metazoans, on the other hand, the nonlinear relationship between growth metabolism and growth rate has led to the speculation that above a critical value of Pg certain energy consuming functions of maintenance are suppressed and the energy thus gained used for fuelling growth processes. There is some evidence that, at least in ectothermic metazoans, the apparent cost of growth decreases with the rate of growth, reaching a low plateau of about 10 mumolO2/mgdbm at growth rates exceeding about 8 mgdbm/g/h.(ABSTRACT TRUNCATED AT 400 WORDS)

Entities:  

Mesh:

Year:  1994        PMID: 8193215     DOI: 10.1111/j.1469-185x.1994.tb01484.x

Source DB:  PubMed          Journal:  Biol Rev Camb Philos Soc        ISSN: 0006-3231


  14 in total

Review 1.  Genotype to phenotype: Diet-by-mitochondrial DNA haplotype interactions drive metabolic flexibility and organismal fitness.

Authors:  Wen C Aw; Samuel G Towarnicki; Richard G Melvin; Neil A Youngson; Michael R Garvin; Yifang Hu; Shaun Nielsen; Torsten Thomas; Russell Pickford; Sonia Bustamante; Antón Vila-Sanjurjo; Gordon K Smyth; J William O Ballard
Journal:  PLoS Genet       Date:  2018-11-06       Impact factor: 5.917

2.  The metabolic basis of whole-organism RNA and phosphorus content.

Authors:  James F Gillooly; Andrew P Allen; James H Brown; James J Elser; Carlos Martinez del Rio; Van M Savage; Geoffrey B West; William H Woodruff; H Arthur Woods
Journal:  Proc Natl Acad Sci U S A       Date:  2005-08-09       Impact factor: 11.205

3.  The energy cost of embryonic development in fishes and amphibians, with emphasis on new data from the Australian lungfish, Neoceratodus forsteri.

Authors:  Casey A Mueller; Jean M P Joss; Roger S Seymour
Journal:  J Comp Physiol B       Date:  2010-07-30       Impact factor: 2.200

4.  Energetic mechanisms for coping with changes in resource availability.

Authors:  Sonya K Auer; Julia R Solowey; Shreyas Rajesh; Enrico L Rezende
Journal:  Biol Lett       Date:  2020-11-04       Impact factor: 3.703

5.  The energetic and survival costs of growth in free-ranging chipmunks.

Authors:  Vincent Careau; Patrick Bergeron; Dany Garant; Denis Réale; John R Speakman; Murray M Humphries
Journal:  Oecologia       Date:  2012-06-13       Impact factor: 3.225

6.  The role of competition versus cooperation in microbial community coalescence.

Authors:  Pablo Lechón-Alonso; Tom Clegg; Jacob Cook; Thomas P Smith; Samraat Pawar
Journal:  PLoS Comput Biol       Date:  2021-11-08       Impact factor: 4.475

7.  Heat increment of feeding and thermal substitution in mallard ducks feeding voluntarily on grain.

Authors:  P A Kaseloo; J R Lovvorn
Journal:  J Comp Physiol B       Date:  2003-03-04       Impact factor: 2.200

8.  Sustained exercise-trained juvenile black carp (Mylopharyngodon piceus) at a moderate water velocity exhibit improved aerobic swimming performance and increased postprandial metabolic responses.

Authors:  Xiuming Li; Yaoguang Zhang; Xiaojin Li; Hua Zheng; Jianglan Peng; Shijian Fu
Journal:  Biol Open       Date:  2018-02-20       Impact factor: 2.422

9.  Caterpillars selected for large body size and short development time are more susceptible to oxygen-related stress.

Authors:  Jon F Harrison; Arianne J Cease; John M Vandenbrooks; Todd Albert; Goggy Davidowitz
Journal:  Ecol Evol       Date:  2013-04-08       Impact factor: 2.912

10.  Small pelagics in a changing ocean: biological responses of sardine early stages to warming.

Authors:  Filipa Faleiro; Marta Pimentel; Maria Rita Pegado; Regina Bispo; Ana Rita Lopes; Mário S Diniz; Rui Rosa
Journal:  Conserv Physiol       Date:  2016-05-17       Impact factor: 3.079

View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.