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Iwasaki, K.-i.

Publications and source records attributed to Iwasaki, K.-i..

3 recordsLinked to original sources

Neryl diphosphate-derived monoterpene biosynthesis via a biosynthetic gene cluster in the liverwort Marchantia polymorpha

Monoterpenes (C10) are a large group of specialized metabolites important for plant interactions with the environment. Their biosynthesis is well understood in seed plants, where geranyl diphosphate serves as the canonical substrate, but knowledge of monoterpene biosynthesis outside seed plants remains very limited. Here, we report neryl diphosphate (NPP)-derived monoterpene biosynthesis via a biosynthetic gene cluster in the liverwort Marchantia polymorpha. MpMTPSL2, a microbial-type terpene synthase, converts NPP into -phellandrene and D-limonene in vitro. CRISPR knockout lines showed reduced production of both monoterpenes, providing direct genetic evidence for its in planta function. MpCPT5, a cis-prenyltransferase (CPT) family member identified through co-expression with MpMTPSL2, was confirmed to encode NPP synthase, as its knockout plants abolished -phellandrene and D-limonene production. Subcellular localization analyses in protoplasts and stable transgenic plants demonstrated that both MpCPT5 and MpMTPSL2 localize to plastids, co-localizing across all cell types with markedly stronger signals in non-green plastids of oil-body cells. Consistent with this, expression of both genes under their respective promoters was nearly abolished in oil-body-deficient mutants and strongly upregulated in a gain-of-function line for oil-body formation. MpMTPSL2 and MpCPT5 are physically linked through a shared bidirectional promoter that drives their coexpression specific to oil body cells, forming a unique biosynthetic gene cluster whose coordinated expression is maintained by PRC2-mediated H3K27me3 repression. Phylogenetic analysis implies that NPP synthases in M. polymorpha and in flowering plants evolved independently from their respective long-chain CPT ancestors. These findings provide new insights into the mechanisms and evolution of monoterpene biosynthesis in non-seed plants. Significance statementMonoterpenes are a diverse group of specialized metabolites produced widely among land plants, yet our understanding of their biosynthesis outside seed plants remains limited. Here we report that in the liverwort Marchantia polymorpha, the non-canonical substrate neryl diphosphate is used for monoterpene biosynthesis. The functions of the monoterpene synthase gene MpMTPSL2 and the neryl diphosphate synthase gene MpCPT5 were demonstrated through CRISPR knockouts. These two genes are physically linked and share a bidirectional promoter. Promoter assays show both genes function in plastids within oil-body cells, revealing cell-type specificity. These findings shew new light on the mechanisms and evolution of monoterpene biosynthesis in non-seed plants.

plant biology↗

ABCG transporters are involved in the accumulation of specialized metabolites in the oil bodies of Marchantia polymorpha

Bioactive specialized metabolites (SMs) are synthesized and sequestered in specific cellular compartments or organelles as a self-defense strategy against their intrinsic toxicity. Liverwort-specific oil bodies accumulate large amounts of SMs and contribute to chemical defense; however, the molecular mechanisms underlying SM sequestration in oil bodies remain largely unknown. Therefore, in this study, we focused on MpABCG1 and MpABCG36, which are ATP-binding cassette (ABC) protein family members localized to the oil bodies of liverwort Marchantia polymorpha. Sesquiterpene (thujopsene, chamigrene, and himachalane) accumulation was reduced in the Mpabcg1 and Mpabcg36 loss-of-function mutants. Notably, levels of the bisbibenzyls, marchantins C and A, were predominantly reduced in Mpabcg1, but not in Mpabcg36. Although the Mpabcg1 mutant formed a number of oil bodies labeled with mCitrine- MpSYP12B (oil body membrane marker) comparable to that of the wild-type, the number of oil bodies stained with BODIPY 493/503, which has an affinity for lipophilic SMs, was reduced. This finding suggests that MpABCG1 and MpABCG36 mutations affect SM accumulation in the oil body but have little impact on oil body formation. Overall, our results highlight the involvement of MpABCG1 and MpABCG36 in the accumulation of SMs and/or their precursors in liverwort oil bodies.

plant biology↗

Acquirement of the autonomic nervous system modulation evaluated by heart rate variability in medaka (Oryzias latipes)

Small teleosts have recently been established as models of human diseases. However, measuring heart rate by electrocardiography is highly invasive for small fish. The physiological nature and function of vertebrate autonomic nervous system (ANS) modulation of the heart has traditionally been investigated in larvae with an incompletely developed ANS or in anesthetized adults, whose ANS activity may possibly be disturbed under anesthesia. Here, we defined the frequency characteristics of heart rate variability (HRV) modulated by the ANS from observations of heart movement in high-speed movie images and changes in ANS regulation under environmental stimulation in unanesthetized adult medaka (Oryzias latipes), a small teleost. The HRV was significantly reduced by atropine (1 mM) in the 0.25 - 0.65 Hz and by propranolol (100 M) at 0.65-1.25 Hz range, suggesting that HRV in adult medaka is modulated by both the parasympathetic and sympathetic nervous systems within these frequency ranges. Such modulations of HRV by the ANS were remarkably suppressed in anesthetized adult medaka. Continuous exposure to light suppressed HRV only in the 0.25 - 0.65 Hz range, indicating parasympathetic withdrawal. The power of HRV increased along developmental processes. These results suggest that ANS modulation of the heart in adult medaka is frequency-dependent phenomenon, and that the impact of long-term environmental stimuli on ANS activities can be precisely evaluated in unanesthetized adult fish using this method.

physiology↗