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外生菌根担子菌(Hebeloma属)在有机氮和无机氮上的生长比较

Comparative growth of ectomycorrhizal basidiomycetes (Hebeloma spp.) on organic and inorganic nitrogen.

作者信息

Tibbett M, Hartley M, Hartley S

机构信息

School of Conservation Sciences, Bournemouth University, Poole, Dorset, BH12 5BB, UK.

出版信息

J Basic Microbiol. 2000;40(5-6):393-5.

Abstract

In the largely organic soils in which ectomycorrhizas are commonly found, a preference for absorbing organic nitrogen over mineral forms is likely to be an advantage, especially where mineralisation rates are low. To determine rates of both independent and preferential growth of ectomycorrhizal basidiomycetes on organic and inorganic nitrogen, strains of Hebeloma were grown on nutrient agar media containing either NH4+ or glutamic acid as the sole source of nitrogen, on both single medium and split plate Petri dishes. Growth rates on the split plate Petri dishes, where the fungi had access to both nitrogen sources, were generally greater than on the single medium dishes. Growth on glutamic acid was at least equal to, and usually greater than, that on NH4+. In some cases growth on NH4+ alone appeared severely inhibited, a condition that was partially alleviated by access to glutamic acid on the split plates Petri dishes. This highlights a potential pitfall of single nitrogen source growth studies. The greater growth of most strains on glutamic acid suggests an adaptation to organic nitrogen utilisation in these strains. If this is so in soils with low mineralisation rates, direct uptake of amino acids by ectomycorrhizal plants could by-pass the bottle neck that requires mineral nitrogen to be made available for plant uptake.

摘要

在通常发现外生菌根的大部分有机土壤中,相较于矿质形态的氮,优先吸收有机氮可能具有优势,尤其是在矿化率较低的地方。为了确定外生菌根担子菌在有机氮和无机氮上独立生长及优先生长的速率,在含有NH4+或谷氨酸作为唯一氮源的营养琼脂培养基上,于单培养基和平板分割培养皿中培养Hebeloma菌株。在平板分割培养皿中,真菌可利用两种氮源,其生长速率通常高于单培养基培养皿。在谷氨酸上的生长至少与在NH4+上的生长相当,且通常大于在NH4+上的生长。在某些情况下,单独在NH4+上的生长似乎受到严重抑制,而在平板分割培养皿中可利用谷氨酸时,这种情况会得到部分缓解。这凸显了单一氮源生长研究的一个潜在缺陷。大多数菌株在谷氨酸上生长得更好,表明这些菌株适应了有机氮的利用。如果在矿化率低的土壤中也是如此,外生菌根植物直接吸收氨基酸可能会绕过需要使矿质氮可供植物吸收的瓶颈。

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