<p>Halophilic <i>α</i>-amylases remain active at high concentrations of salt. Therefore, they can be used in starch-processing industries operating&#xa0;under extreme saline conditions, such as the baking and detergent industries, as well as in effluent remediation processes. In the present work, an&#xa0;endogenous halophilic <i>α</i>-amylase from the CAZy GH13_5 subfamily&#xa0;was recombinantly expressed and characterized from a non-halophilic <i>Paenibacillus pabuli</i>&#xa0;isolate. The predicted structural model revealed the three characteristic domains of <i>α</i>-amylases. In addition, the protein contained the seven conserved sequence regions (CSRs) and the catalytic triad (Asp-Glu-Asp) of <i>α</i>-amylases. The 60.1&#xa0;kDa purified enzyme had an optimum pH of 7.0 and an optimum temperature of 40&#xa0;°C. The enzyme’s<i> T</i><sub>m</sub> was 53.6&#xa0;°C, but it remained 80% active after 48&#xa0;h of incubation at 40&#xa0;°C, at pH 7.0. The purified enzyme used preferentially starch, maltodextrin, and blocked <i>p</i>-nitrophenyl <i>α</i>-<span>d</span>-maltoheptaoside (B<i>p</i>NPG7) as substrates and produced maltose in starch degradation, as evidenced by thin-layer chromatography. The <i>K</i><sub>M</sub> for starch&#xa0;of the purified enzyme was 1.34&#xa0;mg/mL, and the <i>V</i><sub>max</sub> was 0.04&#xa0;mg/min of degraded starch. EDTA, Ca<sup>2+</sup>, and Mg<sup>2+</sup> acted as activators of the purified enzyme, whereas the detergent SDS and several other ions acted as inhibitors. The purified recombinant enzyme exhibited up to 100%&#xa0;increase in&#xa0;activity in the presence of 1.5-3.0&#xa0;M NaCl. The high expression&#xa0;level (430&#xa0;µg/mL of culture medium) and the characteristics of the studied enzyme, such as its ability to&#xa0;liquefy starch under high-salt conditions, make it a promissing&#xa0;tool for industrial starch&#xa0;hydrolysis.</p>

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Recombinant Expression and Characterization of a New Endogenous and Halophilic GH13_5 Subfamily α-Amylase from Paenibacillus pabuli

  • Karina Lima dos Reis,
  • Ione Parra Barbosa‑Tessmann

摘要

Halophilic α-amylases remain active at high concentrations of salt. Therefore, they can be used in starch-processing industries operating under extreme saline conditions, such as the baking and detergent industries, as well as in effluent remediation processes. In the present work, an endogenous halophilic α-amylase from the CAZy GH13_5 subfamily was recombinantly expressed and characterized from a non-halophilic Paenibacillus pabuli isolate. The predicted structural model revealed the three characteristic domains of α-amylases. In addition, the protein contained the seven conserved sequence regions (CSRs) and the catalytic triad (Asp-Glu-Asp) of α-amylases. The 60.1 kDa purified enzyme had an optimum pH of 7.0 and an optimum temperature of 40 °C. The enzyme’s Tm was 53.6 °C, but it remained 80% active after 48 h of incubation at 40 °C, at pH 7.0. The purified enzyme used preferentially starch, maltodextrin, and blocked p-nitrophenyl α-d-maltoheptaoside (BpNPG7) as substrates and produced maltose in starch degradation, as evidenced by thin-layer chromatography. The KM for starch of the purified enzyme was 1.34 mg/mL, and the Vmax was 0.04 mg/min of degraded starch. EDTA, Ca2+, and Mg2+ acted as activators of the purified enzyme, whereas the detergent SDS and several other ions acted as inhibitors. The purified recombinant enzyme exhibited up to 100% increase in activity in the presence of 1.5-3.0 M NaCl. The high expression level (430 µg/mL of culture medium) and the characteristics of the studied enzyme, such as its ability to liquefy starch under high-salt conditions, make it a promissing tool for industrial starch hydrolysis.