Evidence for phosphorus cycling parity in nodulating and non-nodulating N2 fixing pioneer plant species in glacial primary succession
Data files
Feb 07, 2025 version files 65.76 KB
Abstract
Nodulating leguminous and actinorhizal N2-fixation pioneer plants are well-known drivers of primary succession as they may facilitate soil development and the growth of neighboring non-nodulating plant species as a result of their N2-fixing capacity. However, recent studies have shown that some non-nodulating species may also obtain N through endophytic diazatrophs although the N2-fixing capacity is relatively low when compared to the traditionally nodulating species. There remains limited understanding of how these two categories of N2 fixing pioneer plant species (nodulating and non-nodulating) acquire recalcitrant resident soil phosphorus (P) pools and facilitate soil P cycling. To address this knowledge gap, we investigated whether pioneering plant species belonging to different functional groups, i.e., nodulating N2-fixing species (leguminous Astragalus mahoshanicus and actinorhizal seabuckthorn Hippophae rhamnoides) and non-nodulating endophytic N2-fixing willow species (Salix rehderiana), have distinct rhizosphere soil P chemistry when grown on barren deglaciated moraine. We also examined if plant-induced changes in soil P transformations are related to the relative abundance of microbial P transformation genes. Our results showed that pioneer plant colonization enhanced soil P cycling as indicated by higher concentrations of available P (Olsen-P), alkaline phosphatase activity, and abundance of key genes governing microbial P-cycling in rhizosphere soils compared to bulk soils. Among plant species, the astragalus and the willow had the greatest available P concentrations along with greater organic acid concentrations, total organic P transformation gene and organic P mineralization gene abundances. On the other hand, seabuckthorn had the lowest available P concentration and organic P mineralization gene abundance. The willow species, S. rehderiana, was the only plant studied that had greater total abundance of inorganic P solublization genes, gcd, ppk, as well as the organic P mineralization gene phoD than that found in bulk soil. Willow also had the greatest capability for releasing recalcitrant inorganic P in infertile barren moraine. These novel studies suggest that the nodulating N2-fixing species were not categorically better than non-nodulating endophytic N2-fixing species at accessing P as measured by soil available P concentrations in rhizosphere soils or microbial P transformation genes. This study provides new insights into potential mechanisms of ecosystem primary succession with broader implications for ecosystem management and restoration efforts.
https://doi.org/10.5061/dryad.1ns1rn94h
Description of the data and file structure
The data was collected on the foreland of Hailuogou Glacier* *(29°34′N, 102°00′E, 2982-2855 m) on Gongga Mountain on the eastern slope of the Qinghai-Tibetan Plateau.
Data files include:
Soil basic chemical properties.xlsx
This file contains data on soil pH, TN, SOC, TP, and AP concentrations.
| Variables | Units | Description |
|---|---|---|
| Soil samples | categorical | BS=bulk soil; AS=Astragalus soil, HI=Seabuckthorn Soil; SR=Willow soil |
| Stand age | yr | |
| pH | number | |
| TN | mg g-1 | Total nitrogen |
| SOC | mg g-1 | Soil organic carbon |
| TP | mg g-1 | Total phosphorus |
| AP (Olsen-P) | mg kg-1 | Available phosphorus (Olsen-P) |
Soil alkaline phosphatase activity and organic acid concentrations.xlsx
This file contains data on alkaline phosphatase activity and orgaic acid concentrations.
| Variables | Units | Description |
|---|---|---|
| Soil samples | categorical | BS=bulk soil; AS=Astragalus soil, HI=Seabuckthorn Soil; SR=Willow soil |
| Stand age | yr | |
| Alkaline phosphatase activity | μmol ρNPP g-1 h-1 | |
| Oxalic acid | mg g-1 | |
| Pyruvic acid | mg g-1 | |
| Tartaric acid | mg g-1 | |
| Malonic acid | mg g-1 | |
| Malic acid | mg g-1 | |
| Citric acid | mg g-1 | |
| Succinic acid | mg g-1 | |
| Total organic acids | mg g-1 |
Alpha diversity of soil microbes.xlsx
This file contains data on Chao 1 index, Shannon index and Simpson index of soil microbes.
| Variables | Units | Description |
|---|---|---|
| Soil samples | categorical | BS=bulk soil; AS=Astragalus soil, HI=Seabuckthorn Soil; SR=Willow soil |
| Stand age | yr | |
| Chao index | number | |
| Shannon index | number | |
| Simpson index | number |
Relative abundance of representative microbial genes related to soil P cycling.xlsx
This file contains data on alkaline phosphatase activity and orgaic acid concentrations.
| Variables | Units | Description |
|---|---|---|
| Soil samples | categorical | BS=bulk soil; AS=Astragalus soil, HI=Seabuckthorn Soil; SR=Willow soil |
| Stand age (yr) | yr | |
| appA | % | K01093 |
| glpA,glpD | % | K00111 |
| glpB | % | K00112 |
| glpC | % | K00113 |
| glpK | % | K00864 |
| glpQ,ugpQ | % | K01126 |
| phnA | % | K19670 |
| phnG | % | K06166 |
| phnH | % | K06165 |
| phnI | % | K06164 |
| phnJ | % | K06163 |
| phnL | % | K05780 |
| phnM | % | K06162 |
| phnN | % | K05774 |
| phnO | % | K09994 |
| phnP | % | K06167 |
| phnW | % | K03430 |
| phnX | % | K05306 |
| phoA,phoB | % | K01077 |
| phoD | % | K01113 |
| phoN | % | K09474 |
| gcd | % | K00117 |
| ppa | % | K01507 |
| ppk | % | K00937 |
| glpP | % | K17322 |
| glpT | % | K02445 |
| glpT | % | K17325 |
| phnC | % | K02041 |
| phnD | % | K02044 |
| phnE | % | K02042 |
| phnK | % | K05781 |
| phnU | % | K11083 |
| phnV | % | K11082 |
| ugpA | % | K05814 |
| ugpB | % | K05813 |
| ugpC | % | K05816 |
| ugpE | % | K05815 |
| pit | % | K03306 |
| pstA | % | K02038 |
| pstB | % | K02036 |
| pstC | % | K02037 |
| pstS | % | K02040 |
| phoB | % | K07657 |
| phoB1, phoP | % | K07658 |
| phoP | % | K07660 |
| phoR | % | K07636 |
| phoU | % | K02039 |
| OPMG | % | Organic P mineralization genes |
| IPSG | % | Inorganic solublization genes |
| OPTG | % | Organic P transportation genes |
| IPTG | % | Inorganic P transportation genes |
| PRG | % | P-starvation response regulation |
| TPG | % | Total P transformation genes |
| AKPG | % | Alkaline phosphatase related genes |
| OPM-IPS | % | Organic P mineralization and inorganic solublization genes |
| PTG | % | Organic and inorganic P transportation and P-starvation response regulation genes |
Data was collected on the foreland of Hailuogou Glacier (29°34′N, 102°00′E, 2982-2855 m) on Gongga Mountain on the eastern slope of the Qinghai-Tibetan Plateau. Data files are raw data. Detailed methods are described in the associated paper.
