Nagoya University · 농업·생명과학
이요아키 이누카이 교수의 연구실은 식물 뿌리계의 발달 메커니즘, 특히 옥수수와 벼에서 관찰되는 관류근(기저근) 및 lateral root 형성의 분자적 기반을 중심으로 연구를 진행하고 있습니다. 주로 옥수수와 벼에서 auxin과 사이토크라인의 상호작용, auxin 유동 조절, 그리고 WOX 및 AP2/ERF와 같은 전사인자들이 뿌리 형성과 크기 조절에 어떻게 기여하는지 규명하고자 합니다. 특히, 뿌리 유형의 결정, 뿌리 형성의 초기 단계에서의 분자 신호 전달 메커니즘에 초점을 맞추고 있습니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
Although the importance of auxin in root development is well known, the molecular mechanisms involved are still unknown. We characterized a rice (Oryza sativa) mutant defective in crown root formation, crown rootless1 (crl1). The crl1 mutant showed additional auxin-related abnormal phenotypic traits in the roots, such as decreased lateral root number, auxin insensitivity in lateral root formation, and impaired root gravitropism, whereas no abnormal phenotypic traits were observed in aboveground
Cytokinin is known to have negative effects on de novo auxin-induced root formation. However, the regulatory mechanisms of root initiation by both cytokinin and auxin are poorly understood. In this study, we characterized a rice mutant, termed crown rootless5 (crl5), which produced fewer crown roots and displayed impaired initiation of crown root primordia. The expression of CRL5, which encodes a member of the large AP2/ERF transcription factor family protein, was observed in the stem region whe
Auxin flow is important for different root developmental processes such as root formation, emergence, elongation and gravitropism. However, the detailed information about the mechanisms regulating the auxin flow is less well understood in rice. We characterized the auxin transport-related mutants, Ospin-formed2-1 (Ospin2-1) and Ospin2-2, which exhibited curly root phenotypes and altered lateral root formation patterns in rice. The OsPIN2 gene encodes a member of the auxin efflux carrier proteins
The development of a plastic root system is essential for stable crop production under variable environments. Rice plants have two types of lateral roots (LRs): S-type (short and thin) and L-type (long, thick, and capable of further branching). LR types are determined at the primordium stage, with a larger primordium size in L-types than S-types. Despite the importance of LR types for rice adaptability to variable water conditions, molecular mechanisms underlying the primordium size control of L
To investigate the genetic mechanism regulating crown root formation, we identified two recessive rice mutants (odm 202 and BRX334). The odm 202 mutant was detected in a MNU-mutagenized M3 population of rice (cv. Taichung 65) and the BRX334 mutant in a γ-ray mutagenized M2 population of rice (cv. Blue Rose). The number of crown roots of the odm 202 and BRX334 seedlings was significantly lower than that of the respective wild types and this mutation type was designated as crown rootless with the
To analyze the genetic mechanism regulating root elongation, we characterized five recessive mutants in rice (BRX65, BRX117, BRX430, BRX448 and crl2 mutant). In fifteen-day-old seedlings, the root length of BRX65 was 36% of that of the wild type root, while the length of the roots of BRX117, BRX430 and BRX448 was about 45% of that of the wild type root. These types of mutation were designated as reduced root length with the gene symbol rrl. In contrast, the length of the crl2 mutant root was 114
Lateral roots (LRs) occupy a large part of the root system and play a central role in plant water and nutrient uptake. Monocot plants, such as rice, produce two types of LRs: the S-type (short and thin) and the L-type (long, thick, and capable of further branching). Because of the ability to produce higher-order branches, the L-type LR formation contributes to efficient root system expansion. Auxin plays a major role in regulating the root system development, but its involvement in developing di
Monocot plants produce numerous adventitious (crown) roots. The plant hormone auxin has positive effects on crown root formation, while cytokinin suppresses it. We have demonstrated that auxin-induced CROWN ROOTLESS5 (CRL5) regulates crown root initiation in rice through the induction of OsRR1, a negative regulator of cytokinin signaling. CRL5 overexpressing calli formed adventitious roots, although CRL5 overexpressing plants did not induce ectopic roots, suggesting that CRL5, which promotes de
Lateral roots (LRs) determine the overall root system architecture, thus enabling plants to efficiently explore their underground environment for water and nutrients. However, the mechanisms regulating LR development are poorly understood in monocotyledonous plants. We characterized a rice mutant, wavy root elongation growth 1 (weg1), that produced higher number of long and thick LRs (L-type LRs) formed from the curvatures of its wavy parental roots caused by asymmetric cell growth in the elonga