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Noda, N. N.

Publications and source records attributed to Noda, N. N..

5 recordsLinked to original sources

Mechanistic insights into the UFM1 E3 ligase complex in ufmylation and ribosome-associated protein quality control

Ubiquitin-fold modifier 1 (UFM1) is a ubiquitin-like protein covalently conjugated with intracellular proteins through ufmylation, similar to ubiquitylation. Ufmylation is involved in processes such as endoplasmic reticulum (ER)-associated protein degradation, ribosome-associated protein quality control (RQC) at the ER (ER-RQC), and ER-phagy. However, it remains unclear how ufmylation regulates such distinct ER-related functions. Herein, we provide insights into the mechanism of the UFM1 E3 complex in not only ufmylation but also ER-RQC. The E3 complex consisting of UFL1 and UFBP1 interacted with UFC1, UFM1 E2, and subsequently CDK5RAP3, the last of which is an adaptor for ufmylating ribosomal subunit RPL26. When CDK5RAP3 was absent from the E3 complex, UFBP1 ufmylation occurred, a process thought to drive ER-phagy. Further, upon treatment with anisomycin, an inducer of disome formation, the UFM1 E3 complex associated with ufmylated RPL26 on the 60S ribosomal subunit through the UFM1-interacting region of UFBP1. Loss of E3 components or disruption of the interaction between UFBP1 and ufmylated RPL26 attenuated ER-RQC. These results clarify the molecular mechanism of the UFM1 system and provide new insights into the role of ufmylation.

biochemistry↗

Phosphorylation of phase-separated p62 bodies by ULK1 activates a redox-independent stress response

NRF2 is a transcription factor responsible for antioxidant stress responses that is usually regulated in a redox-dependent manner. p62 bodies formed by liquid-liquid phase separation contain Ser349-phosphorylated p62, which participates in the redox-independent activation of NRF2. However, the regulatory mechanism and physiological significance of phosphorylation remain unclear. Herein, we identify ULK1 as a kinase responsible for phosphorylation of p62. ULK1 co-localizes with p62 bodies, and directly interacts with p62. This phosphorylation allows KEAP1 to be retained within p62 bodies, activating NRF2. p62S351E/+ mice are phosphomimetic knock-in mice in which Ser351 corresponding to human Ser349 is replaced by Glu. These mice, but not phosphodefective p62S351A/S351A mice, exhibit NRF2 hyperactivation and growth retardation, the latter caused by malnutrition and dehydration due to obstruction of the esophagus and forestomach secondary to hyperkeratosis. p62S351E/+ mice are a phenocopy of systemic Keap1-knockout mice. Our results expand our understanding of the physiological importance of the redox-independent NRF2 activation pathway and provide new insight into the role of phase separation in this process.

cell biology↗

Phosphorylation by casein kinase 2 ensures ER-phagy receptor TEX264 binding to ATG8 proteins

Selective autophagy cargos are recruited to autophagosomes primarily by interacting with autophagosomal ATG8 family proteins via the LC3-interacting region (LIR). The upstream sequence of most LIRs contains negatively charged residues such as Asp, Glu, and phosphorylated Ser and Thr. However, the significance of LIR phosphorylation (compared with having acidic amino acids) and the structural basis of phosphorylated LIR-ATG8 binding are not entirely understood. Here, we show that the serine residues upstream of the core LIR of the endoplasmic reticulum (ER)-phagy receptor TEX264 are phosphorylated by casein kinase 2, which is critical for its interaction with ATG8s, autophagosomal localization, and ER-phagy. Structural analysis showed that phosphorylation of these serine residues increased binding affinity by producing multiple hydrogen bonds with ATG8s that cannot be mimicked by acidic residues. This binding mode is different from those of other ER-phagy receptors that utilize a downstream helix, which is absent from TEX264, to increase affinity. These results suggest that phosphorylation of the LIR is critically important for strong LIR-ATG8 interactions, even in the absence of auxiliary interactions.

cell biology↗

Droplets of amyotrophic lateral sclerosis-associated p62/SQSTM1 mutants show slower inner fluidity

A series of amyotrophic lateral sclerosis (ALS)-related proteins such as FUS, TDP-43 and hnRNPA1 has an ability to be liquid-liquid phase separation, and their disease-related mutations cause the transition of their responsible liquid droplets to aggregates. Missense mutations in SQSTM1/p62, which have been identified throughout the gene, are associated with ALS, frontotemporal degeneration (FTD) and Pagets disease of bone. SQSTM1/p62 protein forms liquid-droplets through the interaction with ubiquitinated proteins, and the droplet serves as a platform of autophagosome formation and anti-oxidative stress response via the LC3-interacting region (LIR) and Keap1-interacting region (KIR), respectively. However, it remains unclear whether ALS/FTD-related p62 mutations in LIR and KIR form aberrant liquid droplets, cause defective autophagy and stress response or both. To evaluate the effects of ALS/FTD-related p62 mutations in LIR and KIR on a major oxidative stress system, the Keap1-Nrf2 pathway and the autophagic turnover, we developed systems that enable to monitor them with high sensitivity. These systems revealed that some mutants but not all have their less abilities on the Nrf2-activation and show the delayed turnover. By contrast, while the sufficient ability to form liquid droplets, all droplets consisting of p62 mutants showed slower inner fluidity. These results indicate that like other ALS-related mutant proteins, a primary defect in ALS/FTD with p62 missense mutations is a qualitative change of p62-liquid droplets.

cell biology↗

Mutagenesis and homology modeling reveal a predicted pocket of lysophosphatidylcholine acyltransferase 2 to catch Acyl-CoA.

Platelet-activating factor (PAF) is a potent proinflammatory phospholipid mediator that elicits various cellular functions and promotes several pathological conditions, including anaphylaxis and neuropathic pain. PAF is biosynthesized by two types of lyso-PAF acetyltransferases: lysophosphatidylcholine acyltransferase 1 (LPCAT1) and LPCAT2, which are constitutive and inducible forms of lyso-PAF acetyltransferase, respectively. Because LPCAT2 mainly produces PAF under inflammatory conditions, understanding the structure of LPCAT2 is important for developing specific drugs against PAF-related inflammatory diseases. Although the structure of LPCAT2 has not been determined, the crystal structure was reported for Thermotoga maritima PlsC, an enzyme in the same enzyme family as LPCAT2. In this study, we identified residues in mouse LPCAT2 essential for its enzymatic activity and a potential acyl-coenzyme A (CoA)-binding pocket, based on homology modeling of mouse LPCAT2 with PlsC. We also found that Ala115 of mouse LPCAT2 was important for acyl-CoA selectivity. In conclusion, these results predict the structure of mouse LPCAT2. Our findings have implications for the future development of new drugs against PAF-related diseases.

biochemistry↗