Saprotrophic nutrition

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Hyphae; a key part in the process of saphrotrophic nutrition, is used for the intake of organic matter through its cell wall. The network of hyphae is referred to as a mycelium, and is the "backbone" of fungal nutrition.
Hyphae; a key part in the process of saphrotrophic nutrition, is used for the intake of organic matter through its cell wall. The network of hyphae is referred to as a mycelium, and is the "backbone" of fungal nutrition.

Saphrotrophic nutrition (sah-FF-row-tro-FIK) is a process of chemoautotrophic extra-cellular digestion involved in the processing of dead or decayed organic matter which occurs in saprotrophs or heterotrophs, and is most often associated with fungi such as the Mucor or Rhizopus. The process is most often facilited through the active transport of such materials through endocytosis within the internal mycelium and its constituent hyphae.[1]

Contents

As matter decomposes within a medium in which a saprotroph is residing, the saphrotroph breaks such matter down into their composites;

These products are re-absorbed into the hypha through the cell wall via endocytosis and passed on throughout the mycelium complex. This facilitates the passage of such materials throughout the organism and allows for growth, and if necessary, repair.[1]

In order for a saprotrophic organism to facilitate optimal growth and repair, favourable conditions and nutrients must be present.[3] Optimal conditions refers to several conditions which optimise the growth of saprotrophic organisms, such as;

  1. Presence of water - 80-90% of the fungus is composed of water by mass, and requires excess water for absorption due to the evaporation of internally retent water.[3]
  2. Presence of Oxygen - Very few saphrotrophic organisms can endure anaerobic conditions due to their growth above media such as water or soil.[3]
  3. Neutral-Acidic pH - The condition of neutral or mildly acidic conditions under pH 7 are required. [3]
  4. Low-medium temperature - The majority of saprotrophic organisms require limited temperatures between 1 and 35o, 25o as an optimal temperature.[3]

The majority of nutrients taken in by such organisms must be able to provide carbon, proteins, vitamins and in some cases, ions. Due to the carbon composition of the majority of organisms, dead and organic matter provide rich sources of polysaccharides disaccharides such as glucose, maltose and starch.[1]

In terms of nitrogen-rich sources, saprotrophs require combined protein for the creation of proteins, which is facilitated by the absorption of amino acids, and usually taken from rich soil. Although both ions and vitamins are rare, thiamine or ions such as potassium, phosphorus and magnesium aid the growth of the mycelium.[1]

  1. Clegg, C. J., Mackean, D. G., (2006). Advanced Biology - Principles and applications, 2nd ed. Hodder Publishing

  1. ^ a b c d Advanced biology principles; p296 -- states the purpose of saprotrophs and their internal nutrition, as well as the main 2 types of fungi which are most often referred to, as well as describes, visually, the process of saphrotrophic nutrition through a diagram of hypae referring to the Rhizopus on damp, stale whole-meal bread or rotting fruit.
  2. ^ a b c Advanced Biology Principles p296, fig 14.16 --Diagram detailing the re-absorption of substrates within the hypha.
  3. ^ a b c d e Advanced Biology Principles, p296 fig 14.17 - A diagram explaining the optimal conditions needed for successful growth and repair.
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