Gum arabic (GA) is a highly branched arabinogalactan-protein complex widely used in food and pharmaceutical industries. Its complex side chains contain L-arabinofuranose residues linked via α-(1→3) and α-(1→4) bonds, which represent the final structural barrier to complete enzymatic degradation of GA. Here, we isolated and characterized two complementary α-L-arabinofuranosidases, FoAF2 and FoAF3, from Fusarium oxysporum 12S. FoAF2, a glycoside hydrolase (GH) family 54 enzyme, preferentially cleaves α-(1→3)-arabinosyl residues while exhibiting weak activity toward α-(1→4) linkages at high enzyme concentrations. In contrast, the GH43_34 enzyme FoAF3 displays strict specificity for α-(1→4)-arabinosyl residues but requires prior removal of neighboring α-(1→3) substituents for efficient catalysis. Structural modeling using AlphaFold 3 revealed that the constrained catalytic pocket of FoAF3 is highly sensitive to steric hindrance from adjacent branches, explaining its dependence on sequential FoAF2 action for complete debranching. This two-enzyme system functions similarly to the bifunctional Bifidobacterium BIAraE, but achieves the same effect using separate enzymes rather than fused domains. Combined with previously characterized F. oxysporum enzymes, FoAF2 and FoAF3 complete a comprehensive toolkit enabling systematic GA degradation from complex side chains to monosaccharides. These findings provide molecular insights into the mechanisms underlying α-L-arabinofuranosidase specificity and establish a foundation for the enzymatic modification of GA for industrial applications.
Wax esters (WEs) produced by Euglena gracilis under anaerobic conditions contain significant proportions of odd-chain fatty acids and fatty alcohols (30%-40%). Propionyl-CoA, the primer for odd-chain fatty acid synthesis, is generally thought to be generated via the methylmalonyl-CoA pathway; however, the enzymatic basis of this pathway in E. gracilis remains unclear. Here, we generated knockout (KO) mutants of candidate enzymes in the methylmalonyl-CoA pathway-succinyl-CoA synthetase (SCS), methylmalonyl-CoA mutase (MCM), methylmalonyl-CoA epimerase (MCE), and propionyl-CoA carboxylase (PCC)-using the CRISPR/Cas9 system and examined their roles in odd-chain fatty acid synthesis and propionate assimilation. The methylmalonyl-CoA pathway exhibited direction-dependent functions. KO of MCE and PCC did not affect the proportion of odd-chain WEs, indicating that these enzymes are not required for odd-chain WE synthesis and suggesting an alternative route converting methylmalonyl-CoA to propionyl-CoA. In contrast, both enzymes were required for propionate assimilation. Functional differentiation was observed between SCSβ isozymes: SCSβ1 contributed to odd-chain WE synthesis, whereas SCSβ2 primarily functioned in propionate assimilation. Partial impairment of propionate assimilation in SCSα or SCSβ2 KO strains suggests involvement of additional routes. These findings improve our understanding of direction-dependent roles in the methylmalonyl-CoA pathway in E. gracilis and support further studies of odd-chain lipid biosynthesis.
Anaerobic conditions facilitate bioproduction by enabling diverse metabolic pathways; however, they disrupt redox balance due to the accumulation of reduced cofactors, limiting metabolic efficiency. Rhodoquinone (RQ), a low-redox-potential quinone, supports electron transport under anaerobic conditions. Unlike menaquinone, RQ is synthesized from ubiquinone through a single enzymatic reaction catalyzed by rhodoquinone biosynthesis protein A (RquA), making it a simple, adaptable metabolic engineering tool. In this study, RQ was synthesized in the menaquinone-deficient Escherichia coli ΔmenA strain via heterologous gene expression of rquA from Euglena gracilis. The engineered strain tripled succinate production under anaerobic conditions compared with the control strain. Redox analysis showed a decreased NADH/NAD+ ratio, reflecting improved electron flow under oxygen-limited conditions. Introducing rquA into a strain with high succinate production further increased succinate yields, confirming compatibility with existing metabolic modifications. To explore broader applications, rquA from Rhodospirillum rubrum was expressed in Cyanidioschyzon merolae mitochondria using a construct with a C. merolae mitochondrial targeting signal. Quinone analysis confirmed RQ synthesis, and the engineered strains produced more succinate anaerobically relative to the controls. Although redox cofactor ratios in C. merolae remained stable, rotenone sensitivity indicated altered mitochondrial electron transport under anaerobic conditions. These findings demonstrate that RQ synthesis enhances anaerobic metabolism in bacterial and eukaryotic systems, providing a versatile tool for metabolic engineering under oxygen-limited conditions.
Microalgal oil production represents a promising renewable biofuel source. Metabolic engineering can enhance its utility, transforming it into an improved biofuel and expanding its applications as a feedstock for commodity chemicals, thereby increasing their value in biorefineries. This study focused on anaerobic wax ester production by the microalga Euglena gracilis, aiming to develop stable mutant strains with altered wax ester profiles through genome editing. Two enzymes in the fatty acid beta-oxidation pathway involved in wax ester production were targeted-3-ketoacyl-CoA thiolase and acyl-CoA dehydrogenase-using clustered regularly interspaced short palindromic repeats/Cas9. The results revealed one genetic mutation that lengthened and three that shortened the distribution of wax ester compositions compared to the wild-type (WT). The triple-knockout mutant, combining mutations that shorten wax ester chains, produced wax esters with acyl chains two carbons shorter than WT. This study established a methodology to stably modify wax ester composition in E. gracilis.
We herein report the development of a novel hybrid complex containing gold(I) and a chiral phosphoric acid moiety to generate a multifunctional catalyst. While the use of chiral phosphoric acid as a bifunctional catalyst is a common strategy in asymmetric organic synthesis, chiral phosphoric acid-transition metal hybrid complexes as multifunctional catalysts have not been investigated. Thus, we designed and synthesized a novel gold(I) hybrid complex as a multifunctional catalyst that promotes asymmetric catalytic reactions through multipoint nonclassical noncovalent interactions in substrates that lack classical hydrogen-bond donors. In addition, we demonstrate its usefulness as a multifunctional catalyst by successfully developing the first catalytic asymmetric synthesis of dihydrocyclohepta[b]indoles. Experimental and theoretical studies revealed that this asymmetric catalytic reaction involves the kinetic resolution of the reaction intermediate, and that the favored diastereomeric transition state for yielding enantiomeric products is formed through multipoint nonclassical noncovalent interactions originating from the acid-base nature of the chiral phosphoric acid moiety. We report the development of a novel hybrid complex containing gold(I) and a chiral phosphoric acid moiety. Its usefulness as a multifunctional catalyst was demonstrated by developing the first catalytic asymmetric synthesis of dihydrocyclohepta[b]indoles. Experimental and theoretical studies revealed enantiomeric products were formed through multipoint nonclassical noncovalent interactions originating from the acid-base nature of the chiral phosphoric acid moiety.
In this study, we analyzed the pectin structure within the pulp of cassava. Cassava pectin, derived from cassava pulp treatment at 120 °C for 90 min, was separated into four fractions (CP-P, CP-SD1, CP-SD2F, and CP-SD2R) based on variations in water solubility, electrical properties, and molecular weights. Sugar composition analysis demonstrated an abundance of homogalacturonan (HG) in CP-P and CP-SD2F, rhamnogalacturonan I (RG-I) in CP-SD2R, and neutral sugars in CP-SD1. Because RG-I possesses a complex structure, we analyzed CP-SD2R using various pectinolytic enzymes. Galactose was the major sugar in CP-SD2R accounting for 49 %, of which 65 % originated from arabinogalactan I, 9 % from galactose and galactooligosaccharides, 5 % from arabinogalactan II, and 11 % from galactoarabinan. Seventy-four percent of arabinose in CP-SD2R was present as galactoarabinan. The methylation (DM) and acetylation (DAc) degrees of cassava pectin were 11 and 15 %, respectively. The HG and RG-I regions exhibited DAc values of 5 and 44 %, respectively, signifying the high DAc of RG-I compared to HG. Information derived from the structural analysis of cassava pectin will enable efficient degradation of pectin and cellulose, leading to the use of cassava pulp as a raw material for biorefineries.
To improve the specific activity at low temperatures of Ef-EG2 and to maintain thermostability, five mutant enzymes (K273R, N372D, Q387E, N402D, D43R) were produced. The two mutant enzymes (K273R, N402D) lost the cellulase activity. The specific activities of mutant N372D, Q387E, and D43R enzymes were 2.5-fold higher than that of WT enzyme over various temperatures. The denaturation temperatures (Tm) of WT and N372D, Q387E, and D43R enzymes were 55.1 degrees C, 51.5 degrees C, 51.2 degrees C, and 55.6 degrees C. D43R showed almost the same ther-mostability as the WT enzyme. The three-dimensional structure of D43R was not significantly different from that of the WT enzyme, but the D43R enzyme lost the ability to bind sodium ions. D43R was introduced the additional electrostatic interaction with Asp55.
Euglenida is a taxonomic group of single-celled flagellates that have a variety of nutrient uptake strategies, making this an excellent model for studying the evolutionary acquisition of secondary chloroplasts. Among Euglenida, Euglena gracilis is the most extensively studied at the biochemical and molecular levels. However, the lack of a widely adopted method of nuclear genome transformation has hindered genetic studies in this organism. Herein, we present a novel nuclear transformation electroporation method that utilizes the 5′ adjacent region sequences of endogenous genes in E. gracilis. We used a NanoLuc reporter to evaluate promoter activity to identify four endogenous promoter candidates with superior luciferase transcriptional activity compared with the activity of the commonly used CaMV 35S promoter in E. gracilis nuclear transformation methods. We used G418 selection to obtain stable E. gracilis transformants harboring the transgene in their genomic DNA. Furthermore, we extended the applicability of our method to Rapaza viridis, a kleptoplastic species in Euglenida. Introduction of the DNA constructs developed for E. gracilis into R. viridis via electroporation generated stable G418-resistant strains exhibiting robust luciferase activity. The introduced promoter sequences functioned effectively, and accurate 5′ end modifications of mRNA were observed in both E. gracilis and R. viridis transformants. These findings demonstrate the broad applicability of our nuclear transformation method across multiple Euglenida species, facilitating molecular biology and genetic diversity studies in this taxonomic group.
The N-terminal amino acid sequence of the Pleurotus sp. 90 kDa protein was in good agreement with the corresponding sequence of the glycoside hydrolase (GH) family 37 protein (trehalase) from P. ostreatus PC 15 v2.0. The length of the Pleurotus sp. trehalase gene was 2247 bp, encoding a protein of 749 amino acids with a predicted molecular mass of 81.2 kDa. The molecular mass of the recombinant enzyme was estimated to be about 117 kDa by SDS-PAGE. We found that the recombinant enzyme comprised an N-glycosylated sugar chain and that its optimum pH and temperature were 4.5 and 40 ºC, respectively. Moreover, this enzyme exhibited high activity against trehalose exclusively. We found that the enzyme is novel acid trehalase belonging to GH family 37.
Konjac glucomannan (KGM) is a principal component of the gelatinous food Konjac. Konjac production through alkali treatment releases an undesirable amine-odor. Two acetylesterases (AME1 and AME2) active against konjac glucomannan (polymer or oligomer) were purified from the supernatant of Aspergillus oryzae RIB40 culture. We cloned the genes encoding AME1 and AME2 based on the genomic information of A. oryzae, constructed their expression systems in A. oryzae, and obtained the recombinant enzymes (rAME1 and rAME2). rAME1 did not act on the KGM polymer but only on the KGM oligomer, releasing approximately 60% of the acetic acid in the substrate. However, rAME2 was active against both KGM substrates, releasing approximately 80% and 100% of acetic acid from the polymer and oligomer, respectively. Both enzymes were active against xylan and exhibited a trace activity on ethyl ferulate. The acetyl group position specificities of both enzymes were analyzed via heteronuclear single quantum correlation NMR using oligosaccharides of glucomannan prepared from Aloe vera (AGM), which has a higher acetyl group content than KGM. rAME1 acted specifically on single-substituted acetyl groups and not on double-substituted ones. In contrast, rAME2 appeared to act on all the acetyl groups in AGM. Treatment of 3% KGM with rAME2 followed by heating to 90 °C resulted in gel formation under weakly acidic conditions. This is the first study to induce gelation of KGM under these conditions. A comparison of the breaking and brittleness properties of gels formed by alkaline and enzymatic treatments revealed similar texture of the two gels. Furthermore, scanning electron microscopy of the surface structure of both gels revealed that both formed a fine mesh structure. Our findings on enzymatic gelation of KGM should lead to the development of new applications in food manufacturing industry.
Aspergillus oryzae is a safe microorganism that is commonly used in food production. We constructed a self-cloning vector capable of high expression in A. oryzae. Using the vector, three putative pectin methylesterase (PME) genes belonging to Carbohydrate Esterase family 8 derived from A. oryzae were expressed, and several characteristics of the gene products were examined. The effects of temperature and pH on the three enzymes (AoPME1, 2, and 3) were similar, with optimal reaction temperatures of 50-60 degrees C and optimal reaction pH range of 5 6. The specific activities of AoPME1, 2, and 3 for apple pectin were significantly different (34, 7,601, and 2 U/mg, respectively). When the substrate specificity was examined, AoPME1 showed high activity towards pectin derived from soybean and pea. Although AoPME2 showed little activity towards these pectins, it showed very high activity towards apple- and citrus-derived pectins. AoPME3 showed low specific activity towards all substrates tested. Sugar composition analysis revealed that apple- and citrus-derived pectins were rich in homogalacturonan, while soybean- and pea-derived pectins were rich in xylogalacturonan. When pea pectin was treated with endo-polygalacturonase or endo-xylogalacturonase in the presence of each PME, specific synergistic actions were observed (endo-polygalacturonase with AoPME1 or AoPME2 and endo-xylogalacturonase with AoPME1 or AoPME3). Thus, AoPME1 and AoPME3 hydrolyzed the methoxy group in xylogalacturonan. This is the first report of this activity in microbial enzymes. Our findings on the substrate specificity of PMEs should lead to the determination of the distribution of methoxy groups in pectin and the development of new applications in the field of food manufacturing.
Euglena gracilis produces ATP in the anaerobic mitochondria with concomitant wax ester formation, and NADH is essential for ATP formation and fatty acid synthesis in the mitochondria. This study demonstrated that mitochondrial cofactor conversion by nicotinamide nucleotide transhydrogenase (NNT), converting NADPH/NAD + to NADP + /NADH, is indispensable for sustaining anaerobic metabolism. Silencing of NNT genes significantly decreased wax ester production and cellular viability during anaerobiosis but had no such marked effects under aerobic conditions. An analogous phenotype was observed in the silencing of the gene encoding a mitochondrial NADP + ‐dependent malic enzyme. These results suggest that the reducing equivalents produced in glycolysis are shuttled to the mitochondria as malate, where cytosolic NAD + regeneration is coupled with mitochondrial NADPH generation.
We performed cloning and expression of chitinase A (Pb-ChiA), β-GlcNAcase (Pb-GlcNAcase), and lytic polysaccharide monooxygenase (Pb-LPMO) genes from Paenibacillus sp. The analysis of the hydrolysis products indicated Pb-ChiA to be an exo-type chitinase with 10-fold activity toward β-chitin as compared with α-chitin. The sequence of Pb-GlcNAcase was found to be similar to that of β-N-acetylhexosaminidase from P. barengoltzii (99%, WP_016313754.1). Pb-LPMO was expressed in the Brevibacillus expression system. Pb-ChiA was found to have affinity toward crystalline chitin higher than that of Pb-LPMO. Pb-LPMO boosted the activity of Pb-ChiA toward crystalline α-chitin but not toward crystalline β-chitin. When Pb-LPMO (3 μM) was added to the reaction mixture during the hydrolysis of crystalline α-chitin by Pb-ChiA, hydrolysis products at two-fold concentration were obtained. However, the hydrolysis products decreased upon addition of more than 3 μM Pb-LPMO to the reaction mixture.
We identified the raw-starch-digesting α-amylase genes a earthworm Eisenia fetid α amylase I and II (Ef-Amy I and Ef-Amy II). Each gene consists of 1,530 base pairs (bp) that encode proteins of 510 amino acids, as indicated by the corresponding mRNA sequences. Ef-Amy I and II showed an 89% amino acid identity. The amino acid sequences of Ef-Amy I and II were similar to those of the α-amylases from porcine pancreas, human pancreas, Tenebrio molitor, Oryctolagus cuniculus, and Xenopus (Silurana) tropicalis. Each gene encoding mature Ef-Amy I and II was expressed in the GS115 strain of Pichia pastoris. The molecular masses of the recombinant Ef-Amy I and II were 57 kDa each, and catalytically important residues of α-amylases of the GH family 13 were conserved in both proteins. These amylases exhibited raw-starch-digesting activity at 4 °C. The substrate specificities of rEf-Amy I and II were dissimilar. rEf-Amy I and II were shown to be active even in 40% ethanol, 4 M NaCl, and 4 M KCl.
Conformationally constrained peptides hold promise as molecular tools in chemical biology and as a new modality in drug discovery. The construction and screening of a target-focused library could be a promising approach for the generation of de novo ligands or inhibitors against target proteins. Here, we have prepared a protein kinase-focused library by chemically modifying helix-loop-helix (HLH) peptides displayed on phage and subsequently tethered to adenosine. The library was screened against aurora kinase A (AurA). The selected HLH peptide Bip-3 retained the alpha-helical structure and bound to AurA with a K-D value of 13.7 mu M. Bip-3 and the adenosine-tethered peptide Bip-3-Adc provided IC50 values of 103 mu M and 7.7 mu M, respectively, suggesting that Bip-3-Adc bivalently inhibited AurA. In addition, the selectivity of Bip-3-Adc to several protein kinases was tested, and was highest against AurA. These results demonstrate that chemical modification can enable the construction of a kinase-focused library of phage-displayed HLH peptides.
We found that the α-boryl radical of potassium alkyltrifluoroborate shows higher reactivity compared to the α-boryl radicals of alkylboronic acid pinacol ester and alkyl N-methyl imidodiacetic acid (MIDA) boronate in the halogen atom abstraction step of atom-transfer radical addition (ATRA) between alkyl bromide and vinylborons. In this research, an ATRA of alkyl halides with potassium vinyltrifluoroborate furnished unique alkylborons, which are difficult to synthesize by other methods.
The earthworm Eisenia fetida possesses several cold-active enzymes, including α-amylase, β-glucanase and β-mannanase. E. fetida possesses two isoforms of α-amylase (Ef-Amy I and II) to digest raw starch. Ef-Amy I retains its catalytic activity at temperatures below 10°C. To identify the molecular properties of Ef-Amy I, X-ray crystal structures were determined of the wild type and of the inactive E249Q mutant. Ef-Amy I has structural similarities to mammalian α-amylases, including the porcine pancreatic and human pancreatic α-amylases. Structural comparisons of the overall structures as well as of the Ca2+-binding sites of Ef-Amy I and the mammalian α-amylases indicate that Ef-Amy I has increased structural flexibility and more solvent-exposed acidic residues. These structural features of Ef-Amy I may contribute to its observed catalytic activity at low temperatures, as many cold-adapted enzymes have similar structural properties. The structure of the substrate complex of the inactive mutant of Ef-Amy I shows that a maltohexaose molecule is bound in the active site and a maltotetraose molecule is bound in the cleft between the N- and C-terminal domains. The recognition of substrate molecules by Ef-Amy I exhibits some differences from that observed in structures of human pancreatic α-amylase. This result provides insights into the structural modulation of the recognition of substrates and inhibitors.
A broad variety of unactivated acyclic and alicyclic substrates cleanly undergo site-selective alkenylation of unactivated C(sp 3 )−H bonds with 1,2-bis(phenylsulfonyl)ethene in the presence of persulfate. This simple transformation furnishes ( E )-2-alkylvinylphenylsulfones in up to 88 % yield. In contrast with the previously reported decatungstate protocol, the current method is applicable to alkenylation of sterically hindered C−H bonds. This important advantage significantly broadens the substrate scope, and is attributed to the compact size of the sulfate radical employed in the C−H activation and cleavage.
The Front Cover shows the cycloaddition of C60 with benzyl and methyl propiolate in the presence of Et3N or silica-supported tertiary amine. In our reaction system, Et3N-catalyzed [3+2] cycloaddition of C60 gave cyclopentene-annulated fullerene. On the other hand, cyclobutane-annulated fullerene were obtained via [2+2] cycloaddition of C60 by using a flow packed-bed reactor in combination with a silica-supported tertiary amine. More information can be found in the Communication by M. Ueda et al.