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The morphology of the lung of the African lungfish, Protopterus aethiopicus

A scanning electron-microscopic study

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Summary

The lung of the African lungfish (Protopterus aethiopicus) is paired, long and cylindrical. It is situated on the dorsal aspect of the coelomic cavity ventral to the ribs. Much of the gas exchange tissue is found in the proximal aspect of the lung with the caudal part largely taken up by a centrally situated air-duct with a few large peripherally located alveoli. Interalveolar septa, arranged at differing hierarchical levels from the air-duct, subdivide the lung into alveoli, the gas exchange compartments. The alveolar surface is covered by some cells characterized by microvilli on their free surface, while others are devoid of such structures. The general organization of the lung of Protopterus aethiopicus is similar to that of the other genera of Dipnoi, Neoceratodus and Lepidosiren, with the interalveolar septa increasing the surface area for gas exchange through pulmonary compartmentation. The abundant septal smooth muscle fibres and elastic tissue may contribute to the physiomechanical compliance of the lung. The undifferentiated alveolar pneumocytes and the double capillary system, observed in Protopterus, in general appear to characterize the very primitive lungs of the lower air-breathing vertebrates.

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References

  • Bils RF, Hughes GM (1978) Inner surface of the lungs of frog and lizard. 9th International Congress of electron microscopy, Toronto, vol. II, pp 504–505

  • Bishop IR, Foxon GEH (1968) The mechanism of breathing in the South American lungfish Lepidosiren paradoxa: a radiological study. J Zool Lond 154:263–271

    Article  Google Scholar 

  • Burri PH (1974) The postnatal growth of the rat lung. III. Morphology. Anat Rec 180:77–98

    Article  CAS  PubMed  Google Scholar 

  • Carter GS (1957) Air breathing. In: Brown ME (ed) Physiology of fishes, vol I Academic Press, New York London, pp 65–79

    Google Scholar 

  • Czopek J (1965) Quantitative studies on the morphology of the respiratory surfaces in amphibians. Acta Anat (Basel) 62:296–323

    Article  CAS  Google Scholar 

  • DcGroodt M, Lagasse A, Sebruyns M (1960) Elektronmikroskopische Morphologie der Lungenalveolen des Protopterus und Amblyostoma. In: Proceedings of the International Congress for Electron Microscopy. Springer, Berlin Heidelberg New York, pp 418–421

    Google Scholar 

  • DeLany RG, Fishman AP (1977) Analysis of lung ventilation in aestivating lungfish (Protopterus aethiopicus). Am J Physiol 233:181–187R

    Google Scholar 

  • Grigg GC (1965a) Studies on the Queensland lungfish, Neoceratodus forsten (Krefft). Aust J Zool 13:413–421

    Article  Google Scholar 

  • Grigg GC (1965b) Studies on the Queensland lungfish, Neoceratous forsteri (Krefft). I. Anatomy, histology and functioning of the lung. Aust J Zool 13:243–253

    Article  Google Scholar 

  • Hughes GM (1973) Ultrastructure of the lung of Neoceratodus and Lepidosiren in relation to the lung of other vertebrates. Folia Morphol 21:155–161

    CAS  Google Scholar 

  • Hughes GM (1976) Respiration of amphibious vertebrates. Hughes GM (ed) Academic Press, London

  • Hughes GM (1978) A morphological and ultrastructure comparison of some vertebrate lung. In: Klika E (ed) XIX Congressus Morphologicus Symposia. Prague: Charles University Press, pp 393–405

    Google Scholar 

  • Hughes GM (1979) Scanning electron microscopy of the respiratory surfaces of trout gills. J Zool Lond 188:443–453

    Google Scholar 

  • Hughes GM, Mondolfino RM (1983) Scanning electron microscopy of the gills of Trachurus mediterraneus. Experientia 39:518–519

    Article  Google Scholar 

  • Hughes GM, Munshi JSD (1978) Scanning electron microscopy of the respiratory surfaces of Saccobranchus (= Heteropneustes) fossilis (Bloch). Cell Tissue Res 195:99–109

    Article  CAS  PubMed  Google Scholar 

  • Hughes GM, Umezawa SI (1983) Gill structure of the yellowtail and frog-fish. Jpn J Ichthyol 30:176–183

    Google Scholar 

  • Hughes GM, Weibel ER (1976) Morphometry offish lungs. In: Hughes GM (ed) Respiration of amphibious vertebrates. Academic Press, London pp 213–232

    Google Scholar 

  • Hughes GM, Weibel ER (1978) Visualization of layers lining the lung of the South American lungfish (Lepidosiren paradoxa) and a comparison with the frog and rat. Tissue Cell 10:343–353

    Article  CAS  PubMed  Google Scholar 

  • Hutchson VH, Whitford WG, Kohl M (1968) Relation of body size surface area to gas exchange in anurans. Physiol Zool 41:65–85

    Google Scholar 

  • Jesse MT, Shub C, Fishman AP (1967) Lung and gill ventilation of the African lungfish. Respir Physiol 3:267–287

    Article  CAS  PubMed  Google Scholar 

  • Johansen K (1968) Air breathing fishes. Scient Am 219:109–111

    Article  Google Scholar 

  • Johansen K (1970) Air breathing in fishes. In: Hoar WS, Randall DJ (eds) Fish physiology Vol. IV. Academic Press, London pp 361–411

    Google Scholar 

  • Johansen K, Hanson D (1968) Functional anatomy of the hearts of lungfishes and amphibians. Am Zool 8:191–210

    CAS  PubMed  Google Scholar 

  • Johansen K, Lenfant C (1967) Respiratory function in the South American lungfish, Lepidosiren paradoxa (Fitz). J Exp Biol 46:205–218

    CAS  PubMed  Google Scholar 

  • Johansen K, Reite OB (1967) Influence of acetylcholine and biogenic amines of pulmonary smooth muscle in the African lungfish, Protopterus aethiopicus. Acta Physiol Scand 71:248–252

    Article  CAS  PubMed  Google Scholar 

  • Johansen K, Lenfant C, Griggs CG (1967) Respiratory control in the lungfish, Neoceratodus forsteri (Krefft). Comp Biochem Physiol 20:835–854

    Article  Google Scholar 

  • Johansen K, Lomholt JP, Maloiy GMO (1976) Importance of air and water breathing in relation to size of the African lungfish Protopterus amphibius (Peters). J Exp Biol 65:395–399

    Google Scholar 

  • Klika E, Lelak A (1967) A contribution to the study of the lungs of Protopterus annectens and Polypterus senegalensis. Folia Morphol 15:168–175

    CAS  Google Scholar 

  • Lenfant C, Johansen K (1968) Respiration in the African lungfish, Protopterus aethiopicus. I. Respiratory properties of blood and normal patterns of breathing and gas exchange. J Exp Biol 49:437–452

    CAS  PubMed  Google Scholar 

  • Lenfant C, Johansen K, Grigg GC (1966) Respiratory properties of blood and pattern of gas exchange in the lungfish, Neoceratodus forsteri (Krefft). Respir Physiol 2:1–21

    Article  CAS  PubMed  Google Scholar 

  • Lewis SV (1979) The morphology of the accessory air-breathing organs of the catfish, Ciarias batrachus: A SEM study. J Fish Biol 14:187–191

    Article  Google Scholar 

  • Lomholt JP, Johansen K, Maloiy GMO (1975) Is estivating lung- fish the first vertebrate with suctional breathing? Nature (Lond) 157:787–788

    Article  Google Scholar 

  • Maina JN (1987) The morphology and morphometry of the adult normal baboon lung (Papio anubis). J Anat 150:229–248

    CAS  PubMed  Google Scholar 

  • Maina JN, Maloiy GMO (1985) The morphometry of the lung of the African lungfish (Protopterus aethiopicus): Its structuralfunctinal correlations. Proc R Soc Lond [Biol] 224:399–420

    Article  Google Scholar 

  • McMahon BR (1969) A functional analysis of the aquatic and aerial respiratory movements of an African lungfish, Protopterus aethiopicus, with reference to the evolution of the lung-ventilation mechanism in vertebrates. J Exp Biol 51:407–410

    CAS  PubMed  Google Scholar 

  • McMahon BR (1970) The relative efficiency of gaseous exchange across the lungs and gills of the African lungfish Protopterus aethiopicus. J Exp Biol 52:1–15

    Google Scholar 

  • Olson KR, Fromm PO (1973) A scanning electron microscope study of secondary lamellae and chloride cells of rainbow trout (Salmo gairdneri). Z Zellforsch 143:439–449

    Article  CAS  PubMed  Google Scholar 

  • Perry SF (1983) Reptilian lungs: functional anatomy and evolution. Adv Anat Embryol Cell Biol 79:1–81

    CAS  PubMed  Google Scholar 

  • Pinkerton KE, Barry BE, O'Neil JJ, Raub JA, Pratt PO, Crapo JD (1982) Morphologic changes in the lung during the lifespan of Fischer 344 rats. Am J Anat 166:155–174

    Article  Google Scholar 

  • Rajbanshi VK (1977) The architecture of the gill surface of the catfish, Heteropneustes fossilis (Bloch): SEM study. J Fish Biol 10:325–329

    Article  Google Scholar 

  • Smith HW (1930) Metabolism of the lungfish Protopterus aethiopicus. J Biol Chem 88:97–130

    CAS  Google Scholar 

  • Smith HW (1931) Observations of the African lungfish Protopterus aethiopicus and on evolution from water to land environments. Ecology 12:164–181

    Article  Google Scholar 

  • Torrey TW, Feduccia A (1979) Morphogenesis of the Vertebrates. John Wiley & Sons, New York, p 332

    Google Scholar 

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Maina, J.N. The morphology of the lung of the African lungfish, Protopterus aethiopicus . Cell Tissue Res. 250, 191–196 (1987). https://doi.org/10.1007/BF00214671

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