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Digesta passage and functional anatomy of the digestive tract in the desert tortoise (Xerobates agassizii)

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Abstract

The herbivorous tortoise Xerobates agassizii contents with large fluctuations in the quality and abundance of desert pastures. Responses to grass (Schismus barbatus), herbage (Sphaeralcea ambigua) and pelleted diets were studied in captive animals. Digestive anatomy was investigated in wild tortoises. Cornified esophageal epithelia and numerous mucus glands along the digestive tract indicated a resistance to abrasive diets. Gastric contents were acidic whereas hindgut digesta were near neutral pH. The colon was the primary site of fermentation with short-chain fatty acids mainly comprised of acetate (69–84%), propionate (10–15%) and n-butyrate (1–12%). Fibre digestion was extensive and equivalent to 22–64% of digestible energy intakes. Large particles of grass (25 mm Crmordants) were excreted as a pulse but retained longer than either fluids (Co-EDTA) or fine particles (2 mm; Yb). Patterns of marker excretion suggested irregular mixing of only the fluid and fine particulate digesta in the stomach and the colon. Mean retention times of Crmordants were 14.2–14.8 days on the grass and highfibre pellets. Intakes of grass were low and accompanied by smaller estimates of digesta fill than for the high-fibre pellets. Digestive capacity was large and estimated at 11–21% of body mass on these diets. The capacious but simple digestive anatomy of the tortoise may provide the greatest flexibility in utilizing a variety of forages in its unreliable habitat.

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Abbreviations

bm :

body mass

DM :

drymatter

EDTA :

ethylene-diamine tetra-acetic acid

MRT :

mean retention time

NDF :

neutral detergent fibre

SCFA :

short-chain fatty acid(s)

T max :

time to maximum marker concentration

References

  • Akin DE (1986) Chemical and biological structure in plants as related to microbial degradation of forage cell walls. In: Milligan LP et al (eds) Control of digestion and metabolism in ruminants. Prentice-Hall, Englewood Cliffs NJ, USA, pp 139–157

    Google Scholar 

  • Allen MS, Mertens DR (1988) Evaluating constraints on fibre digestion by rumen microbes, J Nutr 118: 261–270

    Google Scholar 

  • Argenzio RA (1988) Fluid and ion transport in the large intestine. In: Dobson A, Dobson MJ (eds) Aspects of digestive physiology in ruminants. Comstock, Ithaca, USA, pp 140–155

    Google Scholar 

  • Barboza PS (1993) Digestive strategies of the wombats: feed intake, fibre digestion, and digesta passage in two grazing marsupials with hindgut fermentation. Physiol Zool 66: 983–999

    Google Scholar 

  • Barboza PS, Hume ID (1992a) Digestive tract morphology- and digestion in the wombats (Marsupialia: Vombatidae). J Comp Physiol B 162: 552–560

    Google Scholar 

  • Barboza PS, Hume ID (1992b) Hindgut fermentation in the wombats: two marsupial grazers. J Comp Physiol B 162: 561–566

    Google Scholar 

  • Bjorndal KA (1979) Cellulose digestion and volatile fatty acid production in the green turtle Chelonia mydas. Comp Biochem Physiol 63A: 127–133

    Google Scholar 

  • Bjorndal KA (1987) Digestive efficiency in a temperate herbivorous reptile, Gopherus polyphemus. Copeia 1987: 714–720

    Google Scholar 

  • Bjorndal KA (1989) Flexibility of digestive responses in two generalist herbivores, the tortoises Geochelone carbonaria and Geochelone denticulata. Oecologia 78: 317–321

    Google Scholar 

  • Bjorndal KA (1991) Diet mixing: non-additive interactions of diet items in an omnivorous freshwater turtle. Ecology 72: 1234–1241

    Google Scholar 

  • Bjorndal KA, BoltenAB (1990) Digestive processing in a herbivorous freshwater turtle: consequences of small-intestine fermentation. Physiol Zool 63: 1232–1247

    Google Scholar 

  • Bjorndal KA, Bolten AB, Moore JE (1990) Digestive fermentation in herbivores: effect of food particle size. Physiol Zool 63: 710–721

    Google Scholar 

  • Blaxter KL (1989) Energy metabolism in animals and man. Cambridge University Press, Cambridge

    Google Scholar 

  • Blaxter KL, Graham NMcC, Wainman FW (1956) Some observations on the digestibility of food by sheep, and on related problems. Br J Nutr 10: 69–91

    Google Scholar 

  • Bourquin LD, Titgemeyer EC, Garleb KA, Fahey GC (1992) Short chain fatty acid production and fibre degradation by human colonic bacteria: effects of substrate and cell wall fractionation procedures. J Nutr 122: 1508–1520

    Google Scholar 

  • Burge BL, Bradley WG (1976) Population density, structure and feeding habits of the desert tortoise, Gopherus agassizii, in a low desert study area in southern Nevada. Proceedings Desert Tortoise Council Symposium 1976: 51–74

    Google Scholar 

  • Cummings JH, Macfarlane GT (1991) The control and consequences of bacterial fermentation in the human colon. J Appl Bacteriol 70: 443–459

    Google Scholar 

  • Ellis WC, Beever DE (1984) Methods for binding rare earths to specific feed particles. In: Kennedy PM (ed) Techniques in particle size analysis of feed and digesta in ruminants. Can Soc Anim Sci, Edmonton, pp 154–165

    Google Scholar 

  • Engelhardt Wv, Rechkemmer G (1983) The physiological effects of short-chain fatty acids in the hind gut. In: Wallace G, Bell L (eds) Fibre in human and animal nutrition. R Soc New Zealand, Wellington, pp 149–155

    Google Scholar 

  • Foley WJ, Bouskila A, Shkolnik A, Choshniak I (1992) Microbial digestion in the herbivorous lizard Uromastyx aegyptius (Agamidae). J Zool (London) 226: 387–398

    Google Scholar 

  • Frierson EW, Foltz JW (1992) Comparison of intestinal surface areas in two species of cichlid fish. Trans Am Fish Soc 121: 517–523

    Google Scholar 

  • Frye FL (1991) Comparative histology. In: Frye FL (ed) Biomedical and surgical aspects of reptile husbandry, 2nd edn. Kreiger, Malabar, FL, USA, pp 473–511

    Google Scholar 

  • Guard CL (1980) The reptilian digestive system: general characteristics. In: Schmidt-Nielsen K et al (eds) Comparative physiology: primitive mammals. Cambridge University Press, Cambridge, pp 43–51

    Google Scholar 

  • Hamilton J, Coe M (1982) Feeding, digestion and assimilation of a population of giant tortoises (Geochelone gigantea, Schweigger) on Aldabra atoll. J Arid Environ 5: 127–144

    Google Scholar 

  • Hansen RM, Johnson MK, van Devender TR (1976) Foods of the desert tortoise, Gopherus agassizii, in Arizona and Utah. Herpetologica 32: 247–251

    Google Scholar 

  • Helrich K (ed) (1990) Official methods of analysis of the association of official analytical chemists, 15th edn. Association of Official Analytical Chemists, Arlington, VA, USA

    Google Scholar 

  • Holleman DF, White RG (1989) Determination of digesta fill and passage rate from nonabsorbed particulate phase markers using the single dosing method. Can J Zool 67: 488–494

    Google Scholar 

  • Hukuhara T, Naitoh T, Kameyama H (1975) Observations of the gastrointestinal movements of the tortoise (Geoclemys reevesii) by means of the abdominal window technique. Jpn J Smooth Muscle Res 11: 39–46

    Google Scholar 

  • Iverson JB (1980) Colic modifications in iguanine lizards. J Morphol 163: 79–93

    Google Scholar 

  • Karasov WH, Petrossian E, Rosenberg L, Diamond JM (1986) How do passage rate and assimilation differ between herbivorous lizards and nonruminant animals? J Comp Physiol B 156: 599–609

    Google Scholar 

  • Kim YI, Cha WK, Kim DW (1965) Peristaltic movement of the tortoise intestine. Experientia 15: 540–541

    Google Scholar 

  • Lobel PS (1981) Trophic biology of herbivorous reef fishes: alimentary pH and digestive capabilities. J Fish Biol 19: 365–397

    Google Scholar 

  • Luppa H (1977) Histology of the digestive tract. In: Gans C, Parsons TS (eds) Biology of the Reptilia, vol 6. Academic Press, New York, pp 225–303

    Google Scholar 

  • Marken Lichtenbelt WD v (1992) Digestion in an ectothermic herbivore, the green iguana (Iguana iguana): effect of food composition and body temperature. Physiol Zool 65: 649–673

    Google Scholar 

  • McBee RH, McBee VH (1982) The hindgut fermentation in the green iguana, Iguana iguana. In: Burghardt GM, Rand AS (eds) Iguanas of the world. Noyes, Park Ridge, NJ, USA, pp 77–83

    Google Scholar 

  • Meinberger C, Wallis IR, Nagy KA (1993) Food intake and body mass influence transit time and digestibility in the desert tortoise (Xerobates agassizii). Physiol Zool 66: 847–862

    Google Scholar 

  • Olubobokun JA, Craig WM, Pond KR (1990) Effects of mastication and microbial contamination on ruminal in situ forage disappearance. J Anim Sci 68: 3371–3381

    Google Scholar 

  • Owens FN, Hanson CF (1992) External and internal markers for appraising site and extent of digestion in ruminants. J Dairy Sci 75: 2605–2617

    Google Scholar 

  • Parsons TS, Cameron TE (1977) Internal relief of the digestive tract. In: Gans C, Gans KA (eds) Biology of the Reptilia, vol 8. Academic Press, New York, pp 159–223

    Google Scholar 

  • Robbins CT (1993) Wildlife feeding and nutrition. Academic Press, San Diego

    Google Scholar 

  • Rombeau JL, Kripke SA, Settle RG (1990) Short chain fatty acids production, absorption, metabolism and intestinal effects. In: Kritchevsky D et al (eds) Dietary fiber. Plenum Press, New York, USA, pp 317–337

    Google Scholar 

  • Salyers A (1990) Activities of polysaccharide degrading bacteria in the human colon. In: Kritchevsky D et al (eds) Dietary fiber. Plenum Press, New York, pp 187–194

    Google Scholar 

  • Skozylas R (1978) Physiology of the digestive tract. In: Gans C, Gans KA (eds) Biology of the Reptilia, vol 8. Academic Press, New York, pp 589–717

    Google Scholar 

  • Spalinger DE, Robbins CT, Hanley TA (1986) The assessment of handling time in ruminants: the effect of plant chemical and physical structure on the rate of breakdown of plant particles in the rumen of mule deer and elk. Can J Zool 64: 312–321

    Google Scholar 

  • Snipes RL, Snipes H, Carrick FN (1993) Surface enlargement of the large intestine of the koala (phascolarctos cinereus): morphometric parameters. Austr J Zool 41: 393–397

    Google Scholar 

  • Stevens CE (1988) Comparative physiology of the vertebrate digestive system. Cambridge University Press, New York

    Google Scholar 

  • Throckmorton GS (1976) Oral food processing in two herbivorous lizards, Iguana iguana (Iguanidae) and Uromastyx aegyptius (Agamidae). J Morphol 148: 363–390

    CAS  PubMed  Google Scholar 

  • Troyer K (1984) Structure and function of the digestive tract of a herbivorous lizard Iguana iguana. Physiol Zool 57: 1–8

    Google Scholar 

  • Uden P, Colucci PE, Van Soest PJ (1980) Investigation of chromium, cerium and cobalt as markers in digesta Rate of passage studies. J Sci Food Agric 31: 625–632

    Google Scholar 

  • Van Soest PJ, Robertson JB, Lewis BA (1991) Methods for dietary fibre, neutral detergent fibre, and non-starch polysaccharides in relation to animal nutrition. J Dairy Sci 74: 3583–3597

    Google Scholar 

  • Wilkinson L (1990) SYSTAT: the system for statistics. Systat Inc., Evanston, IL, USA

    Google Scholar 

  • Zar JH (1974) Brostatistical analysis. Prentice-Hall, Sydney

    Google Scholar 

  • Zimmerman LC, Tracy CR (1989) Interactions between the environment and ectothermy and herbivory in reptiles. Physiol Zool 62: 374–409

    CAS  Google Scholar 

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Communicated by H. Langer

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Barboza, P.S. Digesta passage and functional anatomy of the digestive tract in the desert tortoise (Xerobates agassizii). J Comp Physiol B 165, 193–202 (1995). https://doi.org/10.1007/BF00260810

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