Acid phosphatases (APases) play a role in the release of phosphate in organic complexes in soil. We investigated tissue- and isoform-specific responses of APases to phosphorus (P) deficiency in three rice genotypes; Dasan-byeo, Sobi-byeo, and Palawan. The levels of shoot APase activity per protein were similar in the three genotypes. They significantly decreased with P deprivation that was longer than seven days. Root APase activity per protein was two- to three-fold higher in Dasan than in Sobi and Palawan. In all genotypes the APase activity increased in P-deficient plants, but the increase was higher in Sobi and Palawan. After 21 days of P deprivation, secreted APase activity increased more than eight-fold in Dasan and two-fold in Sobi and Palawan. Isoform profiles of shoot and root APases were most diverse in Dasan. The activities of the major isoforms in P-deficient shoots decreased in all three genotypes. Depending on the genotypes, further increases in constitutive isoforms and new induction of one to four isoforms occurred in P-deficient roots. The results indicate that tissue and genotype differences in the response of APase to P deficiency are primarily facilitated by the different responses of the isoforms.

Download full-text PDF

Source
http://dx.doi.org/10.5483/bmbrep.2003.36.6.597DOI Listing

Publication Analysis

Top Keywords

apase activity
16
sobi palawan
12
activity protein
8
three genotypes
8
activity increased
8
isoforms
5
genotypes
5
apase
5
differential responses
4
responses rice
4

Similar Publications

A Phosphate-Starvation Enhanced Purple Acid Phosphatase, GmPAP23 Mediates Intracellular Phosphorus Recycling and Yield in Soybean.

Plant Cell Environ

January 2025

Department of Plant Nutriton, Root Biology Center, State Key Laboratory for Conservation and Utilization of Subtropical Agro-bioresources, College of Natural Resources and Environment, South China Agricultural University, Guangzhou, China.

Plant internal phosphorus (P) recycling is a complex process, which is vital for improving plant P use efficiency. However, the mechanisms underlying phosphate (Pi) release from internal organic-P form remains to be deciphered in crops. Here, we functionally characterised a Pi-starvation responsive purple acid phosphatase (PAP), GmPAP23 in soybean (Glycine max).

View Article and Find Full Text PDF
Article Synopsis
  • * BnaPAP17s play a crucial role in utilizing organic phosphorus by converting it to inorganic phosphorus, which is essential for plant growth in nutrient-deficient soils.
  • * Experimental evidence shows that overexpressing BnaPAP17s boosts APase activity, leading to higher phosphorus uptake when ATP is the only phosphorus source, indicating their importance for increasing nutrient efficiency in plants.
View Article and Find Full Text PDF

Biotic regulation of phoD-encoding gene bacteria on organic phosphorus mineralization in lacustrine sediments with distinct trophic levels.

Water Res

August 2024

State Key Laboratory of Soil and Sustainable Agriculture, Changshu National Agro-Ecosystem Observation and Research Station, Institute of Soil Science, Chinese Academy of Sciences, Nanjing 210008, China. Electronic address:

Organic phosphorus (Po) mineralization hydrolyzed by alkaline phosphatase (APase) can replenish bioavailable P load in the sediment water ecosystem of lakes. However, the understanding about the interaction between P load and bacteria community encoding APase generation in the sediment are still limited. Different P pools in the sediments from Taihu Lake, China were measured using sequential extraction procedure.

View Article and Find Full Text PDF

Legume crops establish symbiosis with nitrogen-fixing rhizobia for biological nitrogen fixation (BNF), a process that provides a prominent natural nitrogen source in agroecosystems; and efficient nodulation and nitrogen fixation processes require a large amount of phosphorus (P). Here, a role of GmPAP4, a nodule-localized purple acid phosphatase, in BNF and seed yield was functionally characterized in whole transgenic soybean () plants under a P-limited condition. was specifically expressed in the infection zones of soybean nodules and its expression was greatly induced in low P stress.

View Article and Find Full Text PDF
Article Synopsis
  • Oilseed rape (Brassica napus) is a major oil crop that struggles with low phosphorus availability, which is often found in organic forms in the soil.
  • The study examines the relationship between root-secreted acid phosphatases (APase) and root traits to understand how different B. napus genotypes acquire phosphorus under low availability.
  • Key findings indicate that while seed yield correlates with total root-secreted APase activity, trade-offs exist in root traits influencing phosphorus acquisition strategies among different genotypes.
View Article and Find Full Text PDF

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!