Production of an Asparaginase-Like Domain of AnsA from Methanocaldococcus jannaschii in Escherichia coli, its purification and In Silico Analysis
Maham Ijaz, Mohsin Shad, Arshia Nazir, Naseema Azim and
Muhammad Sajjad*
School of Biological Sciences, University of the Punjab, Lahore, 54590, Pakistan
ABSTRACT
L-asparaginase (E.C 3.5.1.1) is a highly valuable enzyme owing to its ability to function as a chemotherapeutic agent against certain lymphomas such as acute lymphoblastic leukemia. This enzyme also mitigates the level of acrylamide production in processed food items. L-asparaginase performs the two-step hydrolytic reaction that results in the deamination of amino acid asparagine into aspartic acid and ammonia. L-asparaginases are widely distributed in three domains of life but their microbial source is getting much attention in the field of pharmaceutical industry due to cost effectiveness and ease of production. The focus of current research work is the utilization of various in silico tools for structural and functional analysis of an asparaginase-like domain of ansA gene from Methanocaldococcus sp. The DNA fragment coding for the asparaginase-like domain was PCR amplified, cloned, and expressed using recombinant DNA technology. Specifically designed primers were used for PCR amplification of ansA(T) gene from the genomic DNA of M. jannaschii DSM 2661. After PCR amplification, the gene was first cloned into the cloning vector (pJET1.2/blunt) and thereafter cloned in expression vector pET-28a (+). E. coli BL21 CodonPlus (DE3)-RIL was used as an expression host to produce an asparaginase-like protein, AnsA(T). The recombinant protein AnsA(T) was expressed in soluble form in E. coli. Moreover, the thermostability of the enzyme was determined by heating the supernatant at different temperatures ranging from 60-90 °C for different durations of time. Additionally, the AnsA(T) enzyme was partially purified by heat treatment at 80 °C for 15 min followed by Ni-NTA chromatography. The highly thermostable asparaginase AnsA(T) of Methanocaldococcus sp. can make it a potential candidate for its applications in the food industry.
Article Information
Received 25 October 2023
Revised 15 February 2024
Accepted 23 February 2024
Available online 04 June 2024
(early access)
Published 02 July 2025
Authors’ Contribution
MI has performed the literature review, experimentation, computational analysis and writing original draft. MS performed formal analysis, computational analysis, and validation. AN helped in data curation and experimentation. NA and MS helped in the conceptualization, supervision, writing and editing of the final draft. All authors have read and agreed to the published version of the manuscript.
Key words
Hyperthermophilic archaeon, Methanocaldococcus jannaschii, Asparaginase, Lymphoblastic leukemia, Heterologous expression, Molecular modelling
DOI: https://dx.doi.org/10.17582/journal.pjz/20231025191403
* Corresponding author: [email protected]
0030-9923/2025/0004-1889 $ 9.00/00
Copyright 2025 by the authors. Licensee Zoological Society of Pakistan.
This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
INTRODUCTION
L-asparaginase (L-ASNase), an amidohydrolase (E.C 3.5.1.1) that performs the hydrolytic reaction resulting in the conversion of L-asparagine into the products, aspartate and ammonia (Chi et al., 2022). Based on structural similarity and biochemical properties, L-asparaginases come under 3 classes: Bacterial type (class 1, type I and II), plant-type (class 2, type III) and third class involved Rhizobium etli-type (type IV) (Loch and Jaskolski, 2021). The bacterial L-asparaginases are classified into two main types: type I and type II L-asparaginases. Type I L-asparaginases are cytosolic enzymes that exhibit low substrate affinity and show low to high glutaminase activity. Type II L-asparaginases, also abbreviated as EcII are periplasmic enzymes that display low Km values towards L-asparagine and low glutaminase activity (Zielezinski et al., 2022). Pant-type (type III) L-asparaginases belong to the N-terminal nucleophile hydrolase family (Gabriel et al., 2012). The enzyme is synthesized as a single inactive polypeptide precursor that exists in the form of a mature heterodimer (α/β)2 of two subunits that display activity when undergoes autoproteolytic cleavage to form alpha and beta subunits. Plant L-asparaginases are classified into K+-dependent and K+-independent L-ASNases depending on their requirement for potassium ions for catalysis (Sajed et al., 2022). The enzyme finds its application in both the pharmaceutical and food industries.
The hydrolytic process performed by L-ASNase inhibits the proliferation of cancerous cells by depleting the presence of L-asparagine in blood plasma, which is an essential nutrient for the growth of malignant cells (Naz et al., 2021). Additionally, the thermostability of L-ASNase enables its use in industrial applications including acrylamide mitigation in fried and baked food items (Sajed et al., 2022). Acrylamide is formed as a side product when asparagine reacts with reducing sugar in the Maillard reaction (Munir et al., 2019). Thus, converting asparagine to aspartic acid before baking mitigates acrylamide production. The stability of an enzyme is a crucial aspect that influences its suitability for industrial or therapeutic uses. L-ASNase is also a thermostable enzyme isolated from hyperthermophilic sources. Several highly stable L-asparaginases have also been reported from extremophilic origin such as Pyrococcus yayanosii (Li et al., 2018), Pyrococcus abyssi (Nadeem et al., 2021), Pyrobaculum calidifontis (Chohan et al., 2019), Pyrococcus horikoshii (Yao et al., 2005), Pyrococcus furiosus (Saeed et al., 2020), Thermococcus kodakarensis (Hong et al., 2014), Thermococcus gammatolerans (Zuo et al., 2014), Thermococcus zellige (Zuo et al., 2015), Archaeoglobus fulgidu (Li et al., 2002). Methanocaldococcus jannaschii is an autotrophic hyperthermophilic archaeon phylogenetically associated with the kingdom Euryarchaeota that grows optimally at 85 °C (Malandrin et al., 1999; Susanti et al., 2019). The genome of M. jannaschii reveals an open reading frame for the ansA gene that has an asparaginase-like domain. For the current study, truncation of this asparaginase (ansA) gene was made based on the theoretically determined parameters and sequence homology of domains. The physicochemical properties, molecular modelling, cloning of the asparaginase gene in an expression vector, and its downstream processing were comprehensively explored in this research work.
MATERIALS AND METHODS
Reagents, plasmids, and strains
All the chemicals used in this study were of reagent grade. CloneJET PCR Cloning Kit, GeneJet Gel extraction kit, GeneRuler™ DNA ladder mix (SM0331), Protein Ladder (cat. #26614) and PageRuler™ protein ladder (SM0671) were purchased from Thermo Fisher Scientific. Restriction enzymes NdeI (cat. #ER0582) and XhoI (cat. #ER0691), RNase A, and T4 DNA ligase were also bought from Thermo Scientific, USA. Acrylamide was purchased from Fluka™ and Bis-acrylamide from Acros Organics™. Primers were commercially synthesized by Humanizing Genomics; (Macrogen Inc., Seoul, The Republic of Korea). E. coli strains (DH5α™ and BL21CodonPlus (DE3)-RIL) and pET-28a (+) were from Novagen (Merck, Germany).
Cloning of ansA(T) gene
The asparaginase-like domain of ansA gene (1038 bp) was PCR amplified using genomic DNA of M. jannaschii as a template, and gene-specific forward (5′-CATATGTTAAAAACAATCTCTATTTTATCCAC-3′) and reverse (5′-CTCGAGGTATGCATCAAATCTGCTC-3´) primers. Restriction sites for NdeI and XhoI were inserted at the 5′-ends of forward and reverse primers, respectively (underline sequences). The purified amplicon was ligated into the pJET1.2 cloning vector in a 3:1 molar ratio by using T4 DNA ligase. The presence and orientation of the inserted gene in the recombinant plasmid were first screened through colony PCR of transformants and then further confirmed by performing restriction digestion analysis. The presence of any PCR-related unwanted mutation was confirmed through Sanger’s DNA sequencing. After successful cloning and confirmation of the ansA(T) gene in the cloning vector, the insert was sub-cloned into expression vector pET-28a (+) using NdeI-XhoI restriction sites. The confirmed recombinant construct pJET1.2_ansA(T) was digested using the same set of restriction endonucleases (NdeI-XhoI) and ligated into the pET-28a (+) expression vector.
Heterologous production of recombinant AnsA(T)
The resulting recombinant construct pET28a_ansA(T) was used for the heterologous production of recombinant AnsA(T) in E. coli BL21 CodonPlus (DE3)-RIL cells. The cells were induced with 0.5 mM IPTG (final concentration) and 4 h of post-induction time was given at 37 °C when the optical density at 600 nm reached 0.4-0.5. The cells were subjected to centrifugation at 6000 x g at 4 °C for 10 min. The 2g cell pellet was washed and resuspended in 25 ml of 50 mM Tris-Cl buffer (pH:8.0). Cells were sonicated for lysis by using the Bendelin SonoPlus HD 2070 sonication system. Centrifugation (15,000 xg for 15 min) was performed to separate soluble and insoluble fractions. Negative control was prepared by using the sample in which the cells contained only pET-28a (+) vector also induced with 0.5 mM IPTG. All the fractions were collected and analyzed by 12% polyacrylamide gel electrophoresis (SDS-PAGE).
Heat treatment optimization of AnsA(T)
As the AnsA(T) enzyme is from a thermostable source, the sonic supernatant was heated at different degrees of temperatures, i.e., 60, 70, 80, 85 and 90 °C for 15 and 30 min at each heating temperature. Soluble and heat-precipitated proteins were separated by centrifugation and analyzed on 12% SDS-PAGE for comparison through the gel documentation system (Javaid et al., 2022).
Purification of recombinant AnsA(T)
Cells were lysed to extract the proteins and sonic supernatant was partially purified by heating at 80 °C for 15 min. A heated fraction of recombinant AnsA(T) protein was used for further purification through Ni-NTA chromatography as the recombinant protein contains a 6X-His tag at its both termini (Shad et al., 2024). Fractions were collected at different gradients of imidazole, i.e.,150, 200, 250, 300, 350 and 400 mM. SDS-PAGE analysis was performed to check the purity of protein in eluted fractions following the method described by (Chi et al., 2023). Selected fractions containing AnsA(T) were pooled for dialysis. Protein was dialyzed initially against 50 mM Tris-Cl buffer (pH:8.0) containing 100 mM NaCl and 5 mM EDTA. Dialysis was repeated with the same buffer without EDTA (Arif et al., 2022).
Sequence and structure analysis of AnsA(T)
The 3D structure of the asparaginase-like domain was predicted by using the online modelling program phyre2 (http://www.sbg.bio.ic.ac.uk/phyre2/html/page.cgi?id=index). The overall quality factor of the 3D model for non-bonded atomic interactions was assessed through an ERRAT server (https://servicesn.mbi.ucla.edu/ERRAT/) (Shad et al., 2023). The various physicochemical properties and amino acid composition of AnsA(T) protein were computationally calculated by the ExPASy ProtParam tool (https://web.expasy.org/cgi-bin/protparam/protparam). Multiple sequence alignment of the AnsA(T) domain was performed using computer-aided software, Clustal Omega (https://www.ebi.ac.uk/Tools/msa/clustalo/) with its homologues of hyperthermophilic archaeal and bacterial asparaginases. The predicted structure of the asparaginase-like domain was superimposed with the crystal structure of P. horikoshii (PDB ID:1WNF) by using PyMol (Shad et al., 2023) (https://pymol.org/2/).
RESULTS
Molecular cloning of ansA(T) gene into an expression vector
The polymerase chain reaction of the ansA(T) gene was performed using a set of gene-specific primers and genomic DNA of M. jannaschii as a template, which resulted in the amplification of the required band of about 1.0 kb (Fig. 1A). Gel-purified PCR amplicon of ansA(T) was cloned through blunt end cloning in pJET1.2 (Fig. 1B). Colony PCR of E. coli DH5α colonies containing recombinant plasmid pJET1.2_ansA(T) indicated the three colonies showing a band of 1038 bp which confirmed the presence of ansA(T) in pJET1.2 (Fig. 1C). Double digestion utilizing NdeI and XhoI resulted in the excision of two DNA fragments at the positions of ~1.0 kb and 2.97 kb also confirming the presence of the ansA(T) gene. The restricted purified gene was sub-cloned in expression vector pET28a (+) (Fig. 1D). Screening through colony PCR showed the presence of three colonies of E. coli DH5α transformed with recombinant plasmid pET28a_ansA(T) as shown in Figure 1D. Double digestion analysis using the same set of endonucleases (NdeI and XhoI) also confirmed the presence of insert as shown in Figure 1E.
Expression of recombinant ansA(T) gene
Expression of cloned gene by giving induction of 0.5 mM IPTG for 4 hours using E. coli BL21 CodonPlus (DE3)-RIL demonstrated the production of recombinant protein at a size of about thirty-eight kDa as shown in Figure 2. Analysis of the different fractions of total cell lysate showed that most of the expression was in supernatant indicating its soluble expression (Fig. 2).
Purification of recombinant enzyme through Ni-chromatography
The soluble fraction of recombinant AnsA(T) protein heated at different degrees of temperatures, i.e., 60, 70, 80, 85 and 90 °C for 15 and 30 min showed that the protein is stable up to 85 °C for 30 min (Fig. 3). But the temperature optimized for protein was 80 °C for 15 min at which most of the E. coli proteins are precipitated with no loss of AnsA(T) domain. A heated fraction of recombinant AnsA(T) protein with 6X-His tag was further purified through Ni-NTA chromatography. Analysis of the purity of different fractions collected at different gradients of imidazole showed that the protein was eluted between 200-350 mM concentration of imidazole (Fig. 4).
In silico sequence and structural analysis of ansA(T) gene
The genome of M. jannaschii has an open reading frame annotated as ansA gene having accession ID >AAB97996.1; with the position in the genome between 21148-22401. Asparaginase (AnsA) has three domains, N-terminal GatD domain as shown in green color followed by asparaginase N-terminal superfamily (sf) domain ad asparaginase C-terminal domain as predicted by NCBI Conserved Domain Database (Fig. 5A). Phyre2 was used to build the 3D model of the AnsA(T) domain (Fig. 5B). A 3D model was further validated through the ERRAT tool. Yellow areas on the structure indicate regions that can be rejected at a 95% confidence level; 5 percent of a decent protein structure is anticipated to have an error value above this threshold. Red indicates regions that are rejectable at a 99% confidence level as shown in Figure 6A. Ramachandran plot analyses performed through
PROCHECK predicted that 79% of residues are in the most favored region, 18.7% residues in the additional allowed region, 1.0% in the generously allowed region and 1.3% in the disallowed region as shown in Figure 6B. Results computed from the ExPASy tool, ProtParam predict that it has a theoretical isoelectric point of 6.46 with a molecular weight of 38252.16 Daltons. Multiple sequence alignment revealed the presence of all three conserved regions in asparaginase-like domain that are specific to Type-1 L-asparaginases of bacteria and archaea (Fig. 7). Superimposed 3D Crystal structure of P. horikoshii (PDB:1WNF) and AnsA(T) domain model created by phyre2 showed the conserved catalytic residues at exactly aligned positions in structures of both proteins except a slight difference in the spatial arrangement of Thr-12 residue (RMSD is 1.245 ºA) as shown in Figure 8.
DISCUSSION
Mesophilic sources of L-asparaginases exhibit low stability and are relatively less favorable than their thermophilic counterparts in meeting the challenging needs of this crucial enzyme in industrial applications (Dumina and Zhgun, 2023). Therefore, in the present experimental study, in silico analysis, cloning, recombinant production in E. coli, and purification of this asparaginase-like domain of asparaginase (AnsA) from hyperthermophilic archaeon M. jannaschii were performed with the idea that it will
be inherently stable. Thermophilic enzymes have a broad range of industrial applications because of their thermal stability and higher activity. The thermostability of an enzyme depends upon the composition and hydrophobicity of amino acids. This trait results from their unique structural characteristics, which are generally absent in proteins from mesophilic sources (Panja et al., 2015).
A statistical analysis of preferred amino acids and the thermostability of enzymes has been reported. The abundance of five amino acid residues Ala, Gly, Val, Glu and Lys are favored in most thermostable proteins whereas non-preferred residues are Cys, His and Gln. (Farias and Bonato, 2003). By sequence analysis of the AnsA(T) domain, we found a higher percentage of hydrophobic residues such as Ala (7.2%), Gly (7.2%), Val (9.6%), Glu (8.4%) and Lys (8.7%) whereas the low content of thermolabile residues e.g. Cys (3%), Gln (4%) and His (7%) in the sequence. The genome sequence analysis showed that the hyperthermophilic archaeon M. jannaschii contains an open reading frame, ansA, encoding asparaginase. Domain analysis of asparaginase (AnsA) by Pfam and CDD of NCBI predicted the presence of three domains, 80 residues in the N-terminal specifically predicted as GatD amidotransferase domain, one in the center with only asparaginase domain and one involving center and C-terminal domain predicted the glutaminase /asparaginase domain with 28.5% sequence homology to Pyrococcus furiosus (PDB ID:5B74).
Several archaeal L-asparaginases showed structure similarity and sequence homology to eukaryotic and mesophilic bacteria (Lubkowski and Wlodawer, 2021). Therefore, the AnsA(T) domain was compared to the L-asparaginases present in hyperthermophilic bacteria and observed that the AnsA(T) domain was more like its archaeal than its bacterial counterparts. It showed 31% identities to both characterized archaeal counterparts from Pyrococcus abyssi and Pyrococcus horikoshii. More than 20% identity was also found with characterized bacterial counterparts from Bacillus licheniformis, Escherichia coli and Pectobacterium carotovorum. The alignment showed the conservation of catalytic residues that could be a sign of an evolutionary link between the two distinct domains of life.
Gene-specific primers were designed for the asparaginase-like domain and the gene was amplified by PCR using M. jannaschii genomic DNA as a template. The purified amplicon was cloned in the pJET1.2 cloning vector and screened by colony PCR and double restriction digestion. The gene was excised from the cloning vector and ligated into the expression vector pET-28a (+) (Bansal et al., 2010). After the subsequent cloning confirmation, the recombinant construct produced was then transformed into E. coli BL21-CodonPlus competent cells via heat shock method to obtain the expression of the proteins similarly reported in (Dumina et al., 2023). These transformed cells were then grown in the selective medium containing the antibiotic kanamycin similarly described by (Dobryakova et al., 2023).
A solubility test was also performed to confirm the protein’s nature. SDS PAGE analysis of soluble and insoluble fractions of total cell lysate after sonication indicated the soluble expression of recombinant protein as reported by (Chohan and Rashid, 2018). The AnsA(T) protein expression was optimized with IPTG concentrations and the induction time to obtain the optimal results of large-scale production. The best results were obtained in the form of a thick and dense band using 0.1 mM IPTG concentration and four hours of induction time as previously reported (Karamitros and Labrou, 2014). Stable gene expression exhibiting significant levels of asparaginase was observed because of the analysis which has also been reported previously on Pseudomonas fluorescens (Kishore et al., 2015). The thermostable protein was partially purified by optimized heat treatment at 80 °C for 15 min and further purified by Ni-NTA chromatography as previously reported for purification of thermophilic L-asparaginase from Thermococcus kodakarensis where optimized heat treatment of 65°C for 30 min was used (Hong et al., 2014).
Thermostable L-asparaginases are important components for mitigating the acrylamide content in processed foods by inhibiting the Maillard reaction, which causes acrylamide production when asparagine reacts with reducing sugars (Alam et al., 2018). Temperatures higher than 100 °C are required for this reaction to take place. The asparaginase-like domain of asparaginase from M. jannaschii showed thermostability up to 90°C, which can be a potential candidate for its industrial applications. Further activity assays need to be optimized for the application studies.
Declarations
Acknowledgments
We are highly thankful to the School of Biological Sciences, University of the Punjab Lahore, Pakistan for providing the Lab facilities.
Funding
This publication has been funded by Project No. NRPU-15727 of Higher Education Commission (HEC) of Pakistan.
Ethical statement
The research work does not involve human or animal sampling and it was approved by the institutional Board of Advanced Studies and Research.
Informed consent statement
The information utilized in this research paper is public access and was appropriately cited for recognition of the original authors. Specific, informed consent was not deemed necessary.
Statement of conflict of interest
The authors have declared no conflict of interest.
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