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Alterations in aerobic and anaerobic dehydrogenases and protein levels of three tropical earthworm species with respect to different seasons

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Abstract

The specific activities of cMDH, mMDH and LDH of earthworms (M. posthuma, P. sansibaricus, L. mauritii) started increasing with the onset of favorable seasonal conditions from July to August. A lower temperature and moisture favor the increase in specific activities of enzymes during post-rainy (September–October) and winter (November–January) seasons. The maximum specific activities of enzymes from December to January indicate greater aerobic and anaerobic energy production to cope up with the cold condition. However, the enzyme activities decreased in summer (February–April) with the increase in the ambient temperature. The specific activities were minimum in summer (May–June) as earthworms would be entering quiescent phase to avoid extreme heat and thus showed least energy requirement in this period. Similar seasonal variations were found in the cytoplasmic and mitochondrial proteins. The maximum and minimum seasonal effects were on the epigeic (P. sansibaricus) and endo-anecic (M. posthuma) earthworms, respectively. The differences in the profile of dehydrogenases and proteins may be assigned to the differences in the ecological categories of earthworms.

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References

  • Abe AS (1985) Oxygen uptake of active and aestivation earthworm Glossoscolex paulistus (Oligochaeta, Glossoscolecidae). Comp Biochem Physiol 81A:63–66

    Article  Google Scholar 

  • Arnould JPY, Green JA, Rawlins DR (2001) Fasting metabolism in Antarctic fur seal (Arctocephalus gazelle) pups. Comp Biol Physiol 129A:829–841

    Article  CAS  Google Scholar 

  • Biradar VR, Amaji SD, Shagoti UM, Biradar PM (1999) Seasonal variations in growth and reproduction of the earthworm Perionyx excavatus (Oligochaela Megascolecidae). Biol Fertil Soil 28:389–392

    Article  Google Scholar 

  • Chauhan TPS (1980) Seasonal changes in the activities of some tropical earthworms. Comp Physiol Ecol 5:288–298

    Google Scholar 

  • Childress JJ, Somero GN (1990) Metabolic scaling: a new perspective based on scaling of glycolytic enzyme activities. Am Zool 30:217–229

    Google Scholar 

  • Das AB (1994) Molecular strategies of thermal adaptation in Indian poikilothermic animals. Indian Rev Life Sci 4:1–18

    Google Scholar 

  • Dash MC, Patra VC (1977) Density, biomass and energy budget of a tropical earthworm population from a grassland site in Orissa. India Rev Ecol Biol Soil 14:461–471

    Google Scholar 

  • Dash MC, Senapati BK (1980) Cocoon morphology, hatching and emergence pattern in tropical earthworms. Pedobiologia 20:316–324

    Google Scholar 

  • Edwards CA, Lofty JR (1977) Biology of earthworms. Chapman and Hall, New York, p 333

    Google Scholar 

  • Foster GD, Moon TW (1986) Cortisol and liver metabolism of immature Americans eel, Anguilla rostrata (LeSueur). Fish Physiol Biochem 1:113–124

    Article  CAS  Google Scholar 

  • Hazel JR, Prosser CL (1974) Molecular mechanisms of temperature compensation in poikilotherms. Physiol Rev 54:620–677

    CAS  Google Scholar 

  • Julka JM, Mukherjee RN (1984) Some observations on the seasonal activity of earthworms (Oligochaeta: Annelida) in hill forest soil. Bull Zool Surv India 5:35–39

    Google Scholar 

  • Kale RD, Krishnamoorthy RV (1982) Cyclic fluctuations in the population and distribution of the three species of tropical earthworms in a farmyard garden in Bangalore. Rev Ecol Biol Soil. 19:61–71

    Google Scholar 

  • Lee KE (1985) Earthworms: their ecology and relationship with soils and land use. Academic Press, London 411

    Google Scholar 

  • Lenas M, Szabo L, Matkovicz B, Fischer E (1987) Seasonal antioxidant enzyme changes in earthworm (L. terrestris). Comp Biochem Physiol 87:63–64

    Google Scholar 

  • Lowry OH, Rosebrough NJ, Farr AL, Randall AJ (1951) Protien measurement with the Folin phenol reagent. J Bio Chem 193:265–275

    CAS  Google Scholar 

  • Madge DS (1969) Field and laboratory studies on the activities of two species of tropical earthworms. Pedobiologica 9:188–214

    Google Scholar 

  • McElroy TC, Presley ML, Diehl WJ (1999) Genotypes of multiple allozyme loci interact with an experimental environment to affect survivorship in earthworms (Eisenia andrei). Comp Biochem Physiol 123A:241–247

    CAS  Google Scholar 

  • Morgan JE, Morgan AJ (1993) Seasonal changes in the tissues metal (cd, zn and pb) concentration in two ecophysiologically dissimilar earthworm species, pollution monitoring implication. Environ Pollut 82:1–7

    Article  CAS  Google Scholar 

  • Orchard VA, Cook FJ (1983) Relationship between soil respiration and soil moisture. Soil Biol Biochem 15:447–453

    Article  Google Scholar 

  • Pörtner HO (2002a) Climatic variations and the physiological basis of temperature dependent biogeography: systematic to molecular hierarchy of thermal tolerance in animals. Comp Biochem Physiol 132:739–761

    Google Scholar 

  • Pörtner HO (2002b) Physiological basis of temperature-dependent biogeography: trade-offs in muscle design and performance in polar ectotherms. J Exp Biol 205:2217–2230

    Google Scholar 

  • Presley ML, McElroy TC, Diehl WJ (1996) Soil moisture and temperature interact to affect growth, survivorship, fecundity, and fitness in the earthworm Eisenia fetida. Comp Biochem Physiol 114A:319–326

    Article  CAS  Google Scholar 

  • Reynolds JW, Jordan GA (1975) A preliminary conceptual model of megadrile activity and abundance in the Haliburtons. Megadrilogica 2:1–9

    Google Scholar 

  • Sanchez-Hernandez JC (2006) Earthworm biomarkers in ecological risk assessment. Rev Environ Contam Toxicol 188:85–126

    Article  CAS  Google Scholar 

  • Saroja K (1961) Seasonal acclimatization of oxygen consumption to temperature in a tropical poikilotherm, the earthworm, Megascolex mauritii. Nature 190:930–931

    Article  Google Scholar 

  • Schwantes MLB, Schwantes AR (1982) Adaptative features of ectothermic enzymes-I temperature effects on the MDH from a temperate fish, Leiostomus xanthurus. Comp Biochem Physiol 72:49–58

    CAS  Google Scholar 

  • Tripathi G (1998) A molecular model for environmental adaptation in animal. Naturalia 23:13–21

    Google Scholar 

  • Tripathi G, Bhardwaj P (2004) Seasonal changes in population of some selected earthworm species and soil nutrients in cultivated agroecosystem. J Environ Biol 25:221–226

    CAS  Google Scholar 

  • Tripathi G, Dabi I, Kachhwaha N (2007) Kinetic properties of lactate dehydrogenase from three species of earthworms. Biochem Cell Arch 7:325–330

    CAS  Google Scholar 

  • Tripathi G, Kachhwaha N, Dabi I (2008) General properties of cytoplasmic malate dehydrogenase from some tropical earthworms. J Exp Zool India 11:29–32

    Google Scholar 

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Tripathi, G., Kachhwaha, N. & Dabi, I. Alterations in aerobic and anaerobic dehydrogenases and protein levels of three tropical earthworm species with respect to different seasons. Environmentalist 30, 163–170 (2010). https://doi.org/10.1007/s10669-010-9261-1

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