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1.
J Agric Food Chem ; 72(19): 11013-11028, 2024 May 15.
Artigo em Inglês | MEDLINE | ID: mdl-38691641

RESUMO

Five GH29B α-1,3/4-l-fucosidases (EC 3.2.1.111) were investigated for their ability to catalyze the formation of the human milk oligosaccharide lacto-N-fucopentaose II (LNFP II) from lacto-N-tetraose (LNT) and 3-fucosyllactose (3FL) via transglycosylation. We studied the effect of pH on transfucosylation and hydrolysis and explored the impact of specific mutations using molecular dynamics simulations. LNFP II yields of 91 and 65% were obtained for the wild-type SpGH29C and CpAfc2 enzymes, respectively, being the highest LNFP II transglycosylation yields reported to date. BbAfcB and BiAfcB are highly hydrolytic enzymes. The results indicate that the effects of pH and buffer systems are enzyme-dependent yet relevant to consider when designing transglycosylation reactions. Replacing Thr284 in BiAfcB with Val resulted in increased transglycosylation yields, while the opposite replacement of Val258 in SpGH29C and Val289 CpAfc2 with Thr decreased the transfucosylation, confirming a role of Thr and Val in controlling the flexibility of the acid/base loop in the enzymes, which in turn affects transglycosylation. The substitution of an Ala residue with His almost abolished secondary hydrolysis in CpAfc2 and BbAfcB. The results are directly applicable in the enhancement of transglycosylation and may have significant implications for manufacturing of LNFP II as a new infant formula ingredient.


Assuntos
Leite Humano , Oligossacarídeos , alfa-L-Fucosidase , Leite Humano/química , Humanos , Oligossacarídeos/química , Oligossacarídeos/metabolismo , alfa-L-Fucosidase/metabolismo , alfa-L-Fucosidase/química , alfa-L-Fucosidase/genética , Glicosilação , Hidrólise , Fucose/metabolismo , Fucose/química , Concentração de Íons de Hidrogênio , Biocatálise
2.
J Agric Food Chem ; 72(19): 11002-11012, 2024 May 15.
Artigo em Inglês | MEDLINE | ID: mdl-38700031

RESUMO

Due to the increasing demand for natural food ingredients, including taste-active compounds, enzyme-catalyzed conversions of natural substrates, such as flavonoids, are promising tools to align with the principles of Green Chemistry. In this study, a novel O-methyltransferase activity was identified in the mycelium of Lentinula edodes, which was successfully applied to generate the taste-active flavonoids hesperetin, hesperetin dihydrochalcone, homoeriodictyol, and homoeriodictyol dihydrochalcone. Furthermore, the mycelium-mediated OMT activity allowed for the conversion of various catecholic substrates, yielding their respective (iso-)vanilloids, while monohydroxylated compounds were not converted. By means of a bottom-up proteomics approach, three putative O-methyltransferases were identified, and subsequently, synthetic, codon-optimized genes were heterologously expressed in Escherichia coli. The purified enzymes confirmed the biocatalytic O-methylation activity against targeted flavonoids containing catechol motifs.


Assuntos
Biocatálise , Catecol O-Metiltransferase , Flavonoides , Proteínas Fúngicas , Cogumelos Shiitake , Cogumelos Shiitake/enzimologia , Cogumelos Shiitake/genética , Cogumelos Shiitake/química , Cogumelos Shiitake/metabolismo , Catecol O-Metiltransferase/genética , Catecol O-Metiltransferase/metabolismo , Catecol O-Metiltransferase/química , Proteínas Fúngicas/genética , Proteínas Fúngicas/metabolismo , Proteínas Fúngicas/química , Flavonoides/química , Flavonoides/metabolismo , Aromatizantes/metabolismo , Aromatizantes/química , Micélio/enzimologia , Micélio/genética , Micélio/química , Micélio/metabolismo , Especificidade por Substrato
3.
Nat Commun ; 15(1): 3897, 2024 May 08.
Artigo em Inglês | MEDLINE | ID: mdl-38719841

RESUMO

Understanding enzyme catalysis as connected to protein motions is a major challenge. Here, based on temperature kinetic studies combined with isotope effect measurements, we obtain energetic description of C-H activation in NAD-dependent UDP-glucuronic acid C4 epimerase. Approach from the ensemble-averaged ground state (GS) to the transition state-like reactive conformation (TSRC) involves, alongside uptake of heat ( Δ H ‡ = 54 kJ mol-1), significant loss in entropy ( - T Δ S ‡ = 20 kJ mol-1; 298 K) and negative activation heat capacity ( Δ C p ‡ = -0.64 kJ mol-1 K-1). Thermodynamic changes suggest the requirement for restricting configurational freedom at the GS to populate the TSRC. Enzyme variants affecting the electrostatic GS preorganization reveal active-site interactions important for precise TSRC sampling and H-transfer. Collectively, our study captures thermodynamic effects associated with TSRC sampling and establishes rigid positioning for C-H activation in an enzyme active site that requires conformational flexibility in fulfillment of its natural epimerase function.


Assuntos
Domínio Catalítico , Termodinâmica , Cinética , Conformação Proteica , Carboidratos Epimerases/química , Carboidratos Epimerases/metabolismo , Carboidratos Epimerases/genética , Biocatálise , Catálise , Modelos Moleculares
4.
Nat Commun ; 15(1): 3775, 2024 May 06.
Artigo em Inglês | MEDLINE | ID: mdl-38710701

RESUMO

SAMHD1 regulates cellular nucleotide homeostasis, controlling dNTP levels by catalysing their hydrolysis into 2'-deoxynucleosides and triphosphate. In differentiated CD4+ macrophage and resting T-cells SAMHD1 activity results in the inhibition of HIV-1 infection through a dNTP blockade. In cancer, SAMHD1 desensitizes cells to nucleoside-analogue chemotherapies. Here we employ time-resolved cryogenic-EM imaging and single-particle analysis to visualise assembly, allostery and catalysis by this multi-subunit enzyme. Our observations reveal how dynamic conformational changes in the SAMHD1 quaternary structure drive the catalytic cycle. We capture five states at high-resolution in a live catalytic reaction, revealing how allosteric activators support assembly of a stable SAMHD1 tetrameric core and how catalysis is driven by the opening and closing of active sites through pairwise coupling of active sites and order-disorder transitions in regulatory domains. This direct visualisation of enzyme catalysis dynamics within an allostery-stabilised platform sets a precedent for mechanistic studies into the regulation of multi-subunit enzymes.


Assuntos
Domínio Catalítico , Microscopia Crioeletrônica , Proteína 1 com Domínio SAM e Domínio HD , Proteína 1 com Domínio SAM e Domínio HD/metabolismo , Proteína 1 com Domínio SAM e Domínio HD/química , Proteína 1 com Domínio SAM e Domínio HD/genética , Regulação Alostérica , Humanos , Estrutura Quaternária de Proteína , Catálise , Biocatálise , HIV-1/metabolismo , Modelos Moleculares
5.
Nature ; 629(8010): 98-104, 2024 May.
Artigo em Inglês | MEDLINE | ID: mdl-38693411

RESUMO

Photobiocatalysis-where light is used to expand the reactivity of an enzyme-has recently emerged as a powerful strategy to develop chemistries that are new to nature. These systems have shown potential in asymmetric radical reactions that have long eluded small-molecule catalysts1. So far, unnatural photobiocatalytic reactions are limited to overall reductive and redox-neutral processes2-9. Here we report photobiocatalytic asymmetric sp3-sp3 oxidative cross-coupling between organoboron reagents and amino acids. This reaction requires the cooperative use of engineered pyridoxal biocatalysts, photoredox catalysts and an oxidizing agent. We repurpose a family of pyridoxal-5'-phosphate-dependent enzymes, threonine aldolases10-12, for the α-C-H functionalization of glycine and α-branched amino acid substrates by a radical mechanism, giving rise to a range of α-tri- and tetrasubstituted non-canonical amino acids 13-15 possessing up to two contiguous stereocentres. Directed evolution of pyridoxal radical enzymes allowed primary and secondary radical precursors, including benzyl, allyl and alkylboron reagents, to be coupled in an enantio- and diastereocontrolled fashion. Cooperative photoredox-pyridoxal biocatalysis provides a platform for sp3-sp3 oxidative coupling16, permitting the stereoselective, intermolecular free-radical transformations that are unknown to chemistry or biology.


Assuntos
Aminoácidos , Biocatálise , Acoplamento Oxidativo , Processos Fotoquímicos , Aminoácidos/biossíntese , Aminoácidos/química , Aminoácidos/metabolismo , Biocatálise/efeitos da radiação , Evolução Molecular Direcionada , Radicais Livres/química , Radicais Livres/metabolismo , Glicina/química , Glicina/metabolismo , Glicina Hidroximetiltransferase/metabolismo , Glicina Hidroximetiltransferase/química , Indicadores e Reagentes , Luz , Acoplamento Oxidativo/efeitos da radiação , Fosfato de Piridoxal/metabolismo , Estereoisomerismo , Aminoácidos de Cadeia Ramificada/química , Aminoácidos de Cadeia Ramificada/metabolismo
6.
Langmuir ; 40(19): 10261-10269, 2024 May 14.
Artigo em Inglês | MEDLINE | ID: mdl-38693862

RESUMO

Carnosine is a natural bioactive dipeptide with important physiological functions widely used in food and medicine. Dipeptidase (PepD) from Serratia marcescens can catalyze the reverse hydrolytic reaction of ß-alanine with l-histidine to synthesize carnosine in the presence of Mn2+. However, it remains challenging to practice carnosine biosynthesis due to the low activity and high cost of the enzyme. Therefore, the development of biocatalysts with high activity and stability is of significance for carnosine synthesis. Here, we proposed to chelate Mn2+ to polyethylenimine (PEI) that induced rapid formation of calcium phosphate nanocrystals (CaP), and Mn-PEI@CaP was used for PepD immobilization via electrostatic interaction. Mn-PEI@CaP as the carrier enhanced the stability of the immobilized enzyme. Moreover, Mn2+ loaded in the carrier acted as an in situ activator of the immobilized PepD for facilitating the biocatalytic process of carnosine synthesis. The as-prepared immobilized enzyme (PepD-Mn-PEI@CaP) kept similar activity with free PepD plus Mn2+ (activity recovery, 102.5%), while exhibiting elevated thermal stability and pH tolerance. Moreover, it exhibited about two times faster carnosine synthesis than the free PepD system. PepD-Mn-PEI@CaP retained 86.8% of the original activity after eight cycles of batch catalysis without the addition of free Mn2+ ions during multiple cycles. This work provides a new strategy for the co-immobilization of PepD and Mn2+, which greatly improves the operability of the biocatalysis and demonstrates the potential of the immobilized PepD system for efficient carnosine synthesis.


Assuntos
Fosfatos de Cálcio , Carnosina , Dipeptidases , Enzimas Imobilizadas , Manganês , Nanopartículas , Polietilenoimina , Carnosina/química , Carnosina/metabolismo , Polietilenoimina/química , Manganês/química , Enzimas Imobilizadas/química , Enzimas Imobilizadas/metabolismo , Fosfatos de Cálcio/química , Nanopartículas/química , Dipeptidases/metabolismo , Dipeptidases/química , Serratia marcescens/enzimologia , Biocatálise
7.
Acc Chem Res ; 57(9): 1446-1457, 2024 May 07.
Artigo em Inglês | MEDLINE | ID: mdl-38603772

RESUMO

ConspectusEnzymes are desired catalysts for chemical synthesis, because they can be engineered to provide unparalleled levels of efficiency and selectivity. Yet, despite the astonishing array of reactions catalyzed by natural enzymes, many reactivity patterns found in small molecule catalysts have no counterpart in the living world. With a detailed understanding of the mechanisms utilized by small molecule catalysts, we can identify existing enzymes with the potential to catalyze reactions that are currently unknown in nature. Over the past eight years, our group has demonstrated that flavin-dependent "ene"-reductases (EREDs) can catalyze various radical-mediated reactions with unparalleled levels of selectivity, solving long-standing challenges in asymmetric synthesis.This Account presents our development of EREDs as general catalysts for asymmetric radical reactions. While we have developed multiple mechanisms for generating radicals within protein active sites, this account will focus on examples where flavin mononucleotide hydroquinone (FMNhq) serves as an electron transfer radical initiator. While our initial mechanistic hypotheses were rooted in electron-transfer-based radical initiation mechanisms commonly used by synthetic organic chemists, we ultimately uncovered emergent mechanisms of radical initiation that are unique to the protein active site. We will begin by covering intramolecular reactions and discussing how the protein activates the substrate for reduction by altering the redox-potential of alkyl halides and templating the charge transfer complex between the substrate and flavin-cofactor. Protein engineering has been used to modify the fundamental photophysics of these reactions, highlighting the opportunity to tune these systems further by using directed evolution. This section highlights the range of coupling partners and radical termination mechanisms available to intramolecular reactions.The next section will focus on intermolecular reactions and the role of enzyme-templated ternary charge transfer complexes among the cofactor, alkyl halide, and coupling partner in gating electron transfer to ensure that it only occurs when both substrates are bound within the protein active site. We will highlight the synthetic applications available to this activation mode, including olefin hydroalkylation, carbohydroxylation, arene functionalization, and nitronate alkylation. This section also discusses how the protein can favor mechanistic steps that are elusive in solution for the asymmetric reductive coupling of alkyl halides and nitroalkanes. We are aware of several recent EREDs-catalyzed photoenzymatic transformations from other groups. We will discuss results from these papers in the context of understanding the nuances of radical initiation with various substrates.These biocatalytic asymmetric radical reactions often complement the state-of-the-art small-molecule-catalyzed reactions, making EREDs a valuable addition to a chemist's synthetic toolbox. Moreover, the underlying principles studied with these systems are potentially operative with other cofactor-dependent proteins, opening the door to different types of enzyme-catalyzed radical reactions. We anticipate that this Account will serve as a guide and inspire broad interest in repurposing existing enzymes to access new transformations.


Assuntos
Oxirredutases , Oxirredutases/metabolismo , Oxirredutases/química , Radicais Livres/química , Radicais Livres/metabolismo , Biocatálise , Flavinas/química , Flavinas/metabolismo , Hidroquinonas/química , Hidroquinonas/metabolismo , Mononucleotídeo de Flavina/química , Mononucleotídeo de Flavina/metabolismo , Transporte de Elétrons
8.
J Chem Inf Model ; 64(9): 3953-3958, 2024 May 13.
Artigo em Inglês | MEDLINE | ID: mdl-38607669

RESUMO

The rate constants of enzyme-catalyzed reactions (kcat) are often approximated from the barrier height of the reactive step. We introduce an enhanced sampling QM/MM approach that directly calculates the kinetics of enzymatic reactions, without introducing the transition-state theory assumptions, and takes into account the dynamical equilibrium between the reactive and non-reactive conformations of the enzyme/substrate complex. Our computed kcat values are in order-of-magnitude agreement with the experimental data for two representative enzymatic reactions.


Assuntos
Biocatálise , Teoria Quântica , Cinética , Simulação de Dinâmica Molecular , Enzimas/metabolismo , Enzimas/química , Conformação Proteica
9.
J Chem Inf Model ; 64(9): 3933-3941, 2024 May 13.
Artigo em Inglês | MEDLINE | ID: mdl-38666964

RESUMO

ß-Amyrin synthase (bAS) is a representative plant oxidosqualene cyclase (OSC), and previous studies have identified many functional residues and mutants that can alter its catalytic activity. However, the regulatory mechanism of the active site architecture for adjusting the catalytic activity remains unclear. In this study, we investigate the function of key residues and their regulatory effects on the catalytic activity of Glycyrrhiza glabra ß-amyrin synthase (GgbAS) through molecular dynamics simulations and site-directed mutagenesis experiments. We identified the plasticity residues located in two active site regions and explored the interactions between these residues and tetracyclic/pentacyclic intermediates. Based on computational and experimental results, we further categorize these plasticity residues into three types: effector, adjuster, and supporter residues, according to their functions in the catalytic process. This study provides valuable insights into the catalytic mechanism and active site plasticity of GgbAS, offering important references for the rational enzyme engineering of other OSC enzyme.


Assuntos
Biocatálise , Domínio Catalítico , Transferases Intramoleculares , Simulação de Dinâmica Molecular , Transferases Intramoleculares/metabolismo , Transferases Intramoleculares/química , Transferases Intramoleculares/genética , Mutagênese Sítio-Dirigida
10.
Bioresour Technol ; 401: 130734, 2024 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-38670288

RESUMO

Currently, the predominant method for the industrial production of 1,3-dihydroxyacetone (DHA) from glycerol involves fed-batch fermentation. However, previous research has revealed that in the biocatalytic synthesis of DHA from glycerol, when the DHA concentration exceeded 50 g·L-1, it significantly inhibited microbial growth and metabolism, posing a challenge in maintaining prolonged and efficient catalytic production of DHA. In this study, a new integrated continuous production and synchronous separation (ICSS) system was constructed using hollow fiber columns and perfusion culture technology. Additionally, a cell reactivation technique was implemented to extend the biocatalytic ability of cells. Compared with fed-batch fermentation, the ICSS system operated for 360 h, yielding a total DHA of 1237.8 ± 15.8 g. The glycerol conversion rate reached 97.7 %, with a productivity of 3.44 g·L-1·h-1, representing 485.0 % increase in DHA production. ICSS system exhibited strong operational characteristics and excellent performance, indicating significant potential for applications in industrial bioprocesses.


Assuntos
Reatores Biológicos , Células Imobilizadas , Di-Hidroxiacetona , Glicerol , Di-Hidroxiacetona/metabolismo , Células Imobilizadas/metabolismo , Glicerol/metabolismo , Fermentação , Técnicas de Cultura Celular por Lotes/métodos , Perfusão , Catálise , Biocatálise
11.
Chimia (Aarau) ; 78(4): 222-225, 2024 Apr 24.
Artigo em Inglês | MEDLINE | ID: mdl-38676613

RESUMO

Enzymes are natural catalysts which are gaining momentum in chemical synthesis due to their exquisiteselectivity and their biodegradability. However, the cost-efficiency and the sustainability of the overall biocatalytic process must be enhanced to unlock completely the potential of enzymes for industrial applications. To reach this goal, enzyme immobilization and the integration into continuous flow reactors have been the cornerstone of our research. We showed key examples of the advantages of those tools for the biosynthesis of antivirals, anticancer drugs, and valuable fragrance molecules. By combining new strategies to immobilize biocatalysts, innovative bioengineering approaches, and process development, the performance of the reactions could be boosted up to 100-fold.


Assuntos
Biocatálise , Química Verde , Perfumes , Preparações Farmacêuticas , Antivirais/química , Enzimas Imobilizadas/química , Enzimas Imobilizadas/metabolismo , Perfumes/síntese química , Preparações Farmacêuticas/metabolismo , Preparações Farmacêuticas/química
12.
Nat Commun ; 15(1): 3308, 2024 Apr 17.
Artigo em Inglês | MEDLINE | ID: mdl-38632275

RESUMO

Continuous-flow biocatalysis utilizing immobilized enzymes emerged as a sustainable route for chemical synthesis. However, inadequate biocatalytic efficiency from current flow reactors, caused by non-productive enzyme immobilization or enzyme-carrier mismatches in size, hampers its widespread application. Here, we demonstrate a general-applicable and robust approach for the fabrication of a high-performance enzymatic continuous-flow reactor via integrating well-designed scalable isoporous block copolymer (BCP) membranes as carriers with an oriented and productive immobilization employing material binding peptides (MBP). Densely packed uniform enzyme-matched nanochannels of well-designed BCP membranes endow the desired nanoconfined environments towards a productive immobilized phytase. Tuning nanochannel properties can further regulate the complex reaction process and fortify the catalytic performance. The synergistic design of enzyme-matched carriers and efficient enzyme immobilization empowers an excellent catalytic performance with >1 month operational stability, superior productivity, and a high space-time yield (1.05 × 105 g L-1 d-1) via a single-pass continuous-flow process. The obtained performance makes the designed nano- and isoporous block copolymer membrane reactor highly attractive for industrial applications.


Assuntos
Reatores Biológicos , Enzimas Imobilizadas , Enzimas Imobilizadas/química , Biocatálise , Catálise , Polímeros/química
13.
J Phys Chem B ; 128(16): 3807-3823, 2024 Apr 25.
Artigo em Inglês | MEDLINE | ID: mdl-38605466

RESUMO

The origin of highly efficient asymmetric aminohydroxylation of styrene catalyzed by engineered cytochrome c is investigated by the developed Atom-Bond Electronegativity Equalization Method polarizable force field (ABEEM PFF), which is a combined outcome of electronic and steric effects. Model molecules were used to establish the charge parameters of the ABEEM PFF, for which the bond-stretching and angle-bending parameters were obtained by using a combination of modified Seminario and scan methods. The interactions between carbon-radical Fe-porphyrin (FePP) and waters are simulated by molecular dynamics, which shows a clear preference for the pre-R over the pre-S. This preference is attributed to the hydrogen-bond between the mutated 100S and 101P residues as well as van der Waals interactions, enforcing a specific conformation of the carbon-radical FePP complex within the binding pocket. Meanwhile, the hydrogen-bond between water and the nitrogen atom in the active intermediate dictates the stereochemical outcome. Quantum mechanics/molecular mechanics (QM/MM (ABEEM PFF)) and free-energy perturbation calculations elucidate that the 3RTS is characterized by sandwich-like structure among adjacent amino acid residues, which exhibits greater stability than crowed arrangement in 3STS and enables the R enantiomer to form more favorably. Thus, this study provides mechanistic insight into the catalytic reaction of hemoproteins.


Assuntos
Citocromos c , Simulação de Dinâmica Molecular , Teoria Quântica , Estereoisomerismo , Citocromos c/química , Citocromos c/metabolismo , Hidrólise , Carbono/química , Engenharia de Proteínas , Ligação de Hidrogênio , Biocatálise , Metaloporfirinas/química , Metaloporfirinas/metabolismo
14.
Org Biomol Chem ; 22(19): 3843-3847, 2024 May 15.
Artigo em Inglês | MEDLINE | ID: mdl-38618942

RESUMO

A short and chemoenzymatic synthesis of rotigotine using an IR-36-M5 mutant is reported. Focusing on the residues that directly contact the 2-tetralone moiety, we applied structure-guided semi-rational design to obtain a double-mutant F260W/M147Y, which showed a good isolated yield and S-stereoselectivity >99% toward 2-aminotetralin synthesis. Furthermore, the utility of this biocatalytic protocol was successfully demonstrated in the enantioselective synthesis of rotigotine via enzymatic reductive amination as the key step.


Assuntos
Tetra-Hidronaftalenos , Tiofenos , Aminação , Tiofenos/química , Tiofenos/síntese química , Tetra-Hidronaftalenos/síntese química , Tetra-Hidronaftalenos/química , Biocatálise , Estereoisomerismo , Oxirredução , Irídio/química , Estrutura Molecular , Catálise
15.
J Mater Chem B ; 12(19): 4666-4672, 2024 May 15.
Artigo em Inglês | MEDLINE | ID: mdl-38647183

RESUMO

The formation of transient structures plays important roles in biological processes, capturing temporary states of matter through influx of energy or biological reaction networks catalyzed by enzymes. These natural transient structures inspire efforts to mimic this elegant mechanism of structural control in synthetic analogues. Specifically, though traditional supramolecular materials are designed on the basis of equilibrium formation, recent efforts have explored out-of-equilibrium control of these materials using both direct and indirect mechanisms; the preponderance of such works has been in the area of low molecular weight gelators. Here, a transient supramolecular hydrogel is realized through cucurbit[7]uril host-guest physical crosslinking under indirect control from a biocatalyzed network that regulates and oscillates pH. The duration of transient hydrogel formation, and resulting mechanical properties, are tunable according to the dose of enzyme, substrate, or pH stimulus. This tunability enables control over emergent functions, such as the programmable burst release of encapsulated model macromolecular payloads.


Assuntos
Hidrocarbonetos Aromáticos com Pontes , Hidrogéis , Imidazóis , Hidrogéis/química , Hidrogéis/síntese química , Concentração de Íons de Hidrogênio , Imidazóis/química , Hidrocarbonetos Aromáticos com Pontes/química , Substâncias Macromoleculares/química , Substâncias Macromoleculares/síntese química , Biocatálise , Estrutura Molecular , Muramidase/química , Muramidase/metabolismo
16.
Appl Microbiol Biotechnol ; 108(1): 297, 2024 Apr 12.
Artigo em Inglês | MEDLINE | ID: mdl-38607564

RESUMO

Glycosidic osmolytes are widespread natural compounds that protect microorganisms and their macromolecules from the deleterious effects of various environmental stresses. Their protective properties have attracted considerable interest for industrial applications, especially as active ingredients in cosmetics and healthcare products. In that regard, the osmolyte glucosylglycerate is somewhat overlooked. Glucosylglycerate is typically accumulated by certain organisms when they are exposed to high salinity and nitrogen starvation, and its potent stabilizing effects have been demonstrated in vitro. However, the applications of this osmolyte have not been thoroughly explored due to the lack of a cost-efficient production process. Here, we present an overview of the progress that has been made in developing promising strategies for the synthesis of glucosylglycerate and its precursor glycerate, and discuss the remaining challenges. KEY POINTS: • Bacterial milking could be explored for fermentative production of glucosylglycerate • Glycoside phosphorylases of GH13_18 represent attractive alternatives for biocatalytic production • Conversion of glycerol with alditol oxidase is a promising strategy for generating the precursor glycerate.


Assuntos
Glicosídeos , Compostos Orgânicos , Biocatálise , Fermentação , Glicerol
17.
J Chem Inf Model ; 64(8): 3123-3139, 2024 Apr 22.
Artigo em Inglês | MEDLINE | ID: mdl-38573056

RESUMO

Rapidly predicting enzyme properties for catalyzing specific substrates is essential for identifying potential enzymes for industrial transformations. The demand for sustainable production of valuable industry chemicals utilizing biological resources raised a pressing need to speed up biocatalyst screening using machine learning techniques. In this research, we developed an all-purpose deep-learning-based multiple-toolkit (ALDELE) workflow for screening enzyme catalysts. ALDELE incorporates both structural and sequence representations of proteins, alongside representations of ligands by subgraphs and overall physicochemical properties. Comprehensive evaluation demonstrated that ALDELE can predict the catalytic activities of enzymes, and particularly, it identifies residue-based hotspots to guide enzyme engineering and generates substrate heat maps to explore the substrate scope for a given biocatalyst. Moreover, our models notably match empirical data, reinforcing the practicality and reliability of our approach through the alignment with confirmed mutation sites. ALDELE offers a facile and comprehensive solution by integrating different toolkits tailored for different purposes at affordable computational cost and therefore would be valuable to speed up the discovery of new functional enzymes for their exploitation by the industry.


Assuntos
Biocatálise , Aprendizado Profundo , Enzimas , Enzimas/metabolismo , Enzimas/química , Modelos Moleculares , Conformação Proteica
18.
Methods Enzymol ; 696: 179-199, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38658079

RESUMO

ß-Hydroxy-α-amino acids (ßHAAs) are an essential class of building blocks of therapeutically important compounds and complex natural products. They contain two chiral centers at Cα and Cß positions, resulting in four possible diastereoisomers. Many innovative asymmetric syntheses have been developed to access structurally diverse ßHAAs. The main challenge, however, is the control of the relative and absolute stereochemistry of the asymmetric carbons in a sustainable way. In this respect, there has been considerable attention focused on the chemoenzymatic synthesis of ßHAAs via a one-step process. Nature has evolved different enzymatic routes to produce these valuable ßHAAs. Among these naturally occurring transformations, L-threonine transaldolases present potential biocatalysts to generate ßHAAs in situ. 4-Fluorothreonine transaldolase from Streptomyces sp. MA37 (FTaseMA) catalyzes the cross-over transaldolation reaction between L-Thr and fluoroacetaldehyde to give 4-fluorothreonine and acetaldehyde (Ad). It has been demonstrated that FTaseMA displays considerable substrate plasticity toward structurally diverse aldehyde acceptors, leading to the production of various ßHAAs. In this chapter, we describe methods for the preparation of FTaseMA, and the chemoenzymatic synthesis of ßHAAs from various aldehydes and L-Thr using FTaseMA.


Assuntos
Streptomyces , Transaldolase , Streptomyces/enzimologia , Transaldolase/metabolismo , Transaldolase/química , Transaldolase/genética , Treonina/análogos & derivados , Treonina/química , Treonina/metabolismo , Biocatálise , Aminoácidos/química , Aminoácidos/metabolismo , Especificidade por Substrato , Acetaldeído/análogos & derivados , Acetaldeído/metabolismo , Acetaldeído/química , Proteínas de Bactérias/metabolismo , Proteínas de Bactérias/química , Ensaios Enzimáticos/métodos , Estereoisomerismo
19.
Methods Enzymol ; 696: 231-247, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38658081

RESUMO

Nonheme iron enzymes stand out as one of the most versatile biocatalysts for molecular functionalization. They facilitate a wide array of chemical transformations within biological processes, including hydroxylation, chlorination, epimerization, desaturation, cyclization, and more. Beyond their native biological functions, these enzymes possess substantial potential as powerful biocatalytic platforms for achieving abiological metal-catalyzed reactions, owing to their functional and structural diversity and high evolvability. To this end, our group has recently engineered a series of nonheme iron enzymes to employ non-natural radical-relay mechanisms for abiological radical transformations not previously known in biology. Notably, we have demonstrated that a nonheme iron enzyme, (S)-2-hydroxypropylphosphonate epoxidase from Streptomyces viridochromogenes (SvHppE), can be repurposed into an efficient and selective biocatalyst for radical fluorine transfer reactions. This marks the first known instance of a redox enzymatic process for C(sp3)F bond formation. This chapter outlines the detailed experimental protocol for engineering SvHPPE for fluorination reactions. Furthermore, the provided protocol could serve as a general guideline that might facilitate other engineering endeavors targeting nonheme iron enzymes for novel catalytic functions.


Assuntos
Biocatálise , Flúor , Halogenação , Engenharia de Proteínas , Streptomyces , Flúor/química , Engenharia de Proteínas/métodos , Streptomyces/enzimologia , Streptomyces/genética , Oxirredutases/metabolismo , Oxirredutases/genética , Oxirredutases/química , Oxirredução , Ferroproteínas não Heme/química , Ferroproteínas não Heme/metabolismo , Ferroproteínas não Heme/genética , Proteínas de Bactérias/genética , Proteínas de Bactérias/metabolismo , Proteínas de Bactérias/química
20.
Methods Enzymol ; 696: 199-229, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38658080

RESUMO

Fluorine (F) is an important element in the synthesis of molecules broadly used in medicine, agriculture, and materials. F addition to organic structures represents a unique strategy for tuning molecular properties, yet this atom is rarely found in Nature and approaches to produce fluorometabolites (such as fluorinated amino acids, key building blocks for synthesis) are relatively scarce. This chapter discusses the use of L-threonine aldolase enzymes (LTAs), a class of enzymes that catalyze reversible aldol addition to the α-carbon of glycine. The C-C bond formation ability of LTAs, together with their known substrate promiscuity, make them ideal for in vitro F biocatalysis. Here, we describe protocols to harness the activity of the low-specificity LTAs isolated from Escherichia coli and Pseudomonas putida on 2-fluoroacetaldehyde to efficiently synthesize 4-fluoro-L-threonine in vitro. This chapter also provides a comprehensive account of experimental protocols to implement these activities in vivo. These methods are illustrative and can be adapted to produce other fluorometabolites of interest.


Assuntos
Escherichia coli , Halogenação , Pseudomonas putida , Especificidade por Substrato , Escherichia coli/enzimologia , Escherichia coli/genética , Pseudomonas putida/enzimologia , Biocatálise , Aminoácidos/química , Glicina Hidroximetiltransferase/metabolismo , Glicina Hidroximetiltransferase/química , Glicina Hidroximetiltransferase/genética , Treonina/química , Treonina/metabolismo , Treonina/análogos & derivados , Flúor/química , Aldeídos/química , Aldeídos/metabolismo
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