Yulin Huang, Rong Fan, Xiaoqi Wang, Songlin Jiang, Wanting Liu, Wenli Ji, Weizhong Li
{"title":"Not only phosphorus: dauciform roots can also influence aboveground biomass through root morphological traits and metal cation concentrations","authors":"Yulin Huang, Rong Fan, Xiaoqi Wang, Songlin Jiang, Wanting Liu, Wenli Ji, Weizhong Li","doi":"10.3389/fpls.2024.1367176","DOIUrl":null,"url":null,"abstract":"Phosphorus in the soil is mostly too insoluble for plants to utilize, resulting in inhibited aboveground biomass, while Carex can maintain their aboveground biomass through the presence of dauciform roots. However, dauciform roots lead to both morphological and physiological changes in the root system, making their primary mechanism unclear.A greenhouse experiment was conducted on three Carex species, in which Al-P, Ca-P, Fe-P, and K-P were employed as sole phosphorus sources. The plants were harvested and assessed after 30, 60 and 90 days.(1) The density of dauciform roots was positively correlated with root length and specific root length, positively influencing aboveground biomass at all three stages. (2) The aboveground phosphorus concentration showed a negative correlation with both dauciform root density and aboveground biomass in the first two stages, which became positive in the third stage. (3) Aboveground biomass correlated negatively with the aboveground Al concentration, and positively with Ca and Fe concentration (except Al-P). (4) Root morphological traits emerged as critical factors in dauciform roots’ promotion of aboveground biomass accumulation.Despite the difference among insoluble phosphorus, dauciform roots have a contributing effect on aboveground growth status over time, mainly by regulating root morphological traits. This study contributes to our understanding of short-term variation in dauciform roots and their regulatory mechanisms that enhance Carex aboveground biomass under low available phosphorus conditions.","PeriodicalId":505607,"journal":{"name":"Frontiers in Plant Science","volume":"1 4","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2024-05-24","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Frontiers in Plant Science","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.3389/fpls.2024.1367176","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 0
Abstract
Phosphorus in the soil is mostly too insoluble for plants to utilize, resulting in inhibited aboveground biomass, while Carex can maintain their aboveground biomass through the presence of dauciform roots. However, dauciform roots lead to both morphological and physiological changes in the root system, making their primary mechanism unclear.A greenhouse experiment was conducted on three Carex species, in which Al-P, Ca-P, Fe-P, and K-P were employed as sole phosphorus sources. The plants were harvested and assessed after 30, 60 and 90 days.(1) The density of dauciform roots was positively correlated with root length and specific root length, positively influencing aboveground biomass at all three stages. (2) The aboveground phosphorus concentration showed a negative correlation with both dauciform root density and aboveground biomass in the first two stages, which became positive in the third stage. (3) Aboveground biomass correlated negatively with the aboveground Al concentration, and positively with Ca and Fe concentration (except Al-P). (4) Root morphological traits emerged as critical factors in dauciform roots’ promotion of aboveground biomass accumulation.Despite the difference among insoluble phosphorus, dauciform roots have a contributing effect on aboveground growth status over time, mainly by regulating root morphological traits. This study contributes to our understanding of short-term variation in dauciform roots and their regulatory mechanisms that enhance Carex aboveground biomass under low available phosphorus conditions.
土壤中的磷大多不溶于水,植物无法利用,导致地上生物量受到抑制,而薹草则可以通过大根的存在维持地上生物量。在温室中对三种薹草进行了试验,将 Al-P、Ca-P、Fe-P 和 K-P 作为唯一的磷源。(1)大状根的密度与根长和比根长呈正相关,对三个阶段的地上生物量均有积极影响。(2)在前两个阶段,地上部磷浓度与块根密度和地上部生物量均呈负相关,而在第三个阶段则变为正相关。(3)地上部生物量与地上部 Al 浓度呈负相关,与 Ca 和 Fe 浓度呈正相关(Al-P 除外)。(尽管不溶性磷之间存在差异,但随着时间的推移,根的形态特征主要通过调节根的形态特征对地上部的生长状况有促进作用。这项研究有助于我们了解在低可利用磷条件下大根的短期变化及其提高薹草地上生物量的调控机制。