Bacillus (Latin "stick") is a genus of Gram-positive, rod-shaped bacteria, a member of the phylum Bacillota, with 266 named species. The term is also used to describe the shape (rod) of other so-shaped bacteria; and the plural Bacilli is the name of the class of bacteria to which this genus belongs. Bacillus species can be either obligate aerobes which are dependent on oxygen, or facultative anaerobes which can survive in the absence of oxygen. Cultured Bacillus species test positive for the enzymecatalase if oxygen has been used or is present.[1]
Bacillus can reduce themselves to oval endospores and can remain in this dormant state for years. The endospore of one species from Morocco is reported to have survived being heated to 420 °C.[2] Endospore formation is usually triggered by a lack of nutrients: the bacterium divides within its cell wall, and one side then engulfs the other. They are not true spores (i.e., not an offspring).[3] Endospore formation originally defined the genus, but not all such species are closely related, and many species have been moved to other genera of the Bacillota.[4] Only one endospore is formed per cell. The spores are resistant to heat, cold, radiation, desiccation, and disinfectants. Bacillus anthracis needs oxygen to sporulate; this constraint has important consequences for epidemiology and control.[5] In vivo, B. anthracis produces a polypeptide (polyglutamic acid) capsule that kills it from phagocytosis.[5] The genera Bacillus and Clostridium constitute the family Bacillaceae. Species are identified by using morphologic and biochemical criteria.[1] Because the spores of many Bacillus species are resistant to heat, radiation, disinfectants, and desiccation, they are difficult to eliminate from medical and pharmaceutical materials and are a frequent cause of contamination. Not only are they resistant to heat, radiation, etc., but they are also resistant to chemicals such as antibiotics.[6] This resistance allows them to survive for many years and especially in a controlled environment.[6]Bacillus species are well known in the food industries as troublesome spoilage organisms.[1]
Many species of Bacillus can produce copious amounts of enzymes, which are used in various industries, such as in the production of alpha amylase used in starch hydrolysis and the proteasesubtilisin used in detergents. B. subtilis is a valuable model for bacterial research. Some Bacillus species can synthesize and secrete lipopeptides, in particular surfactins and mycosubtilins.[9][10][11]Bacillus species are also found in marine sponges.[11] Marine sponge associated Bacillus subtilis (strains WS1A and YBS29) can synthesize several antimicrobial peptides.[11][12] These Bacillus subtilis strains can develop disease resistance in Labeo rohita.[11]
Structure
Cell wall
The cell wall of Bacillus is a structure on the outside of the cell that forms the second barrier between the bacterium and the environment, and at the same time maintains the rod shape and withstands the pressure generated by the cell's turgor. The cell wall is made of teichoic and teichuronic acids. B. subtilis is the first bacterium for which the role of an actin-like cytoskeleton in cell shape determination and peptidoglycan synthesis was identified and for which the entire set of peptidoglycan-synthesizing enzymes was localized. The role of the cytoskeleton in shape generation and maintenance is important.[13]
Bacillus species are rod-shaped, endospore-forming aerobic or facultatively anaerobic, Gram-positive bacteria; in some species cultures may turn Gram-negative with age. The many species of the genus exhibit a wide range of physiologic abilities that allow them to live in every natural environment. Only one endospore is formed per cell. The spores are resistant to heat, cold, radiation, desiccation, and disinfectants.[1]
Origin of name
The genus Bacillus was named in 1835 by Christian Gottfried Ehrenberg, to contain rod-shaped (bacillus) bacteria. He had seven years earlier named the genus Bacterium. Bacillus was later amended by Ferdinand Cohn to further describe them as spore-forming, Gram-positive, aerobic or facultatively anaerobic bacteria.[14] Like other genera associated with the early history of microbiology, such as Pseudomonas and Vibrio, the 266 species of Bacillus are ubiquitous.[15] The genus has a very large ribosomal16S diversity.[16]
Isolation and identification
Established methods for isolating Bacillus species for culture primarily involve suspension of sampled soil in distilled water, heat shock to kill off vegetative cells leaving primarily viable spores in the sample, and culturing on agar plates with further tests to confirm the identity of the cultured colonies.[17] Additionally, colonies which exhibit characteristics typical of Bacillus bacteria can be selected from a culture of an environmental sample which has been significantly diluted following heat shock or hot air drying to select potential Bacillus bacteria for testing.[18]
Cultured colonies are usually large, spreading, and irregularly shaped. Under the microscope, the Bacillus cells appear as rods, and a substantial portion of the cells usually contain oval endospores at one end, making them bulge.[19]
Characteristics of Bacillus spp.
S.I. Paul et al. (2021)[11] isolated and identified multiple strains of Bacillus subtilis (strains WS1A,[20] YBS29,[21] KSP163A,[22] OA122,[23] ISP161A,[24] OI6,[25] WS11,[26] KSP151E,[27] and S8,[28]) from marine sponges of the Saint Martin's Island Area of the Bay of Bengal, Bangladesh. Based on their study, colony, morphological, physiological, and biochemical characteristics of Bacillus spp. are shown in the Table below.[11]
Ash and Carol (2008) also uses 16S rRNA and found extensive "phylogenetic heterogenity".[29]
'The All-Species Living Tree' Project, which has been in operation since 2008, also maintains a 16S (and 23S if available) tree of all validated species.[31][32][33] In this tree, the genus Bacillus contains a very large number of nested taxa and majorly in both 16S and 23S. It is paraphyletic to the Lactobacillales (Lactobacillus, Streptococcus, Staphylococcus, Listeria, etc.), due to Bacillus coahuilensis and others.[34]
Alcaraz et al. 2010 presents a gene concatenation study, which found results similar to the All-Species Living Tree, but with a much more limited number of species in terms of groups.[35] (This scheme used Listeria as an outgroup, so in light of the ARB tree, it may be "inside-out").
Nikolaidis et al. 2022 studied 1104 Bacillus proteomes using a gene concatenation based on 114 core proteins and delineated the relationships among the various species, defined as Bacillus from the NCBI taxonomy.[38] The various strains were clustered into species, based on Average Nucleotide identity (ANI) values, with a species cutoff of 95%.[38]
One clade, formed by Bacillus anthracis, Bacillus cereus, Bacillus mycoides, Bacillus pseudomycoides, Bacillus thuringiensis, and Bacillus weihenstephanensis under the 2011 classification standards, should be a single species (within 97% 16S identity), but for medical reasons, they are considered separate species[39] (an issue also present for four species of Shigella and Escherichia coli).[40]
Bacillus subtilis (natto) is the key microbial participant in the ongoing production of the soya-based traditional natto fermentation, and some Bacillus species like Bacillus cereus are on the Food and Drug Administration's GRAS (generally regarded as safe) list.[54]
The capacity of selected Bacillus strains to produce and secrete large quantities (20–25 g/L) of extracellular enzymes has placed them among the most important industrial enzyme producers.[citation needed] The ability of different species to ferment in the acid, neutral, and alkaline pH ranges, combined with the presence of thermophiles in the genus, has led to the development of a variety of new commercial enzyme products with the desired temperature, pH activity, and stability properties to address a variety of specific applications. Classical mutation and (or) selection techniques, together with advanced cloning and protein engineering strategies, have been exploited to develop these products.[citation needed]
Efforts to produce and secrete high yields of foreign recombinant proteins in Bacillus hosts initially appeared to be hampered by the degradation of the products by the host proteases.[citation needed] Recent studies have revealed that the slow folding of heterologous proteins at the membrane-cell wall interface of Gram-positive bacteria renders them vulnerable to attack by wall-associated proteases.[citation needed] In addition, the presence of thiol-disulphide oxidoreductases in B. subtilis may be beneficial in the secretion of disulphide-bond-containing proteins. Such developments from our understanding of the complex protein translocation machinery of Gram-positive bacteria should allow the resolution of current secretion challenges and make Bacillus species preeminent hosts for heterologous protein production.[citation needed]
Bacillus strains have also been developed and engineered as industrial producers of nucleotides, the vitamin riboflavin, the flavor agent ribose, and the supplement poly-gamma-glutamic acid. With the recent characterization of the genome of B. subtilis 168 and of some related strains, Bacillus species are poised to become the preferred hosts for the production of many new and improved products as we move through the genomic and proteomic era.[55]
Use as model organism
Bacillus subtilis is one of the best understood prokaryotes, in terms of molecular and cellular biology. Its superb genetic amenability and relatively large size have provided the powerful tools required to investigate a bacterium from all possible aspects. Recent improvements in fluorescent microscopy techniques have provided novel insight into the dynamic structure of a single cell organism. Research on B. subtilis has been at the forefront of bacterial molecular biology and cytology, and the organism is a model for differentiation, gene/protein regulation, and cell cycle events in bacteria.[56]
^Beladjal L, Gheysens T, Clegg JS, Amar M, Mertens J (September 2018). "Life from the ashes: survival of dry bacterial spores after very high temperature exposure". Extremophiles: Life Under Extreme Conditions. 22 (5): 751–759. doi:10.1007/s00792-018-1035-6. PMID29869718. S2CID46935396.
^"Bacterial Endospores". Cornell University College of Agriculture and Life Sciences, Department of Microbiology. Retrieved 21 October 2018.
^Madigan M, Martinko J, eds. (2005). Brock Biology of Microorganisms (11th ed.). Prentice Hall. ISBN978-0-13-144329-7.
^ abTurnbull PC (1996). "Bacillus". In Baron S (ed.). Medical Microbiology (4th ed.). Galveston (TX): University of Texas Medical Branch at Galveston. ISBN978-0-9631172-1-2. PMID21413260. Retrieved 2024-03-18.
^Favaro G, Bogialli S, Di Gangi IM, Nigris S, Baldan E, Squartini A, et al. (October 2016). "Characterization of lipopeptides produced by Bacillus licheniformis using liquid chromatography with accurate tandem mass spectrometry". Rapid Communications in Mass Spectrometry. 30 (20): 2237–2252. Bibcode:2016RCMS...30.2237F. doi:10.1002/rcm.7705. PMID27487987.
^ abcdefPaul SI, Rahman MM, Salam MA, Khan MA, Islam MT (2021-12-15). "Identification of marine sponge-associated bacteria of the Saint Martin's island of the Bay of Bengal emphasizing on the prevention of motile Aeromonas septicemia in Labeo rohita". Aquaculture. 545: 737156. Bibcode:2021Aquac.54537156P. doi:10.1016/j.aquaculture.2021.737156.
^Cohn F (1872). "Untersuchungen über Bakterien" [Studies on Bacteria.]. Beiträge zur Biologie der Pflanzen [Contributions to the Biology of Plants] (in German). 2 (1): 127–224.
^Yarza P, Ludwig W, Euzéby J, Amann R, Schleifer KH, Glöckner FO, et al. (October 2010). "Update of the All-Species Living Tree Project based on 16S and 23S rRNA sequence analyses". Systematic and Applied Microbiology. 33 (6): 291–299. doi:10.1016/j.syapm.2010.08.001. hdl:10261/54801. PMID20817437.
^Økstad OA, Kolstø AB (December 2010). "Chapter 2: Genomics of Bacillus species". In Wiedmann M, Zhang W (eds.). Genomics of Foodborne Bacterial Pathogens. Food Microbiology and Food Safety. Vol. 29. New York, NY: Springer. pp. 29–53 (34–35). doi:10.1007/978-1-4419-7686-4_2. ISBN978-1-4419-7686-4.
^Brenner DJ (1984). "Family I. Enterobacteriaceae Rahn 1937, Nom. fam. cons. Opin. 15, Jud. Com. 1958, 73; Ewing, Farmer, and Brenner 1980, 674; Judicial Commission 1981, 104.". In Krieg NR, Holt JG (eds.). Bergey's Manual of Systematic Bacteriology. Vol. 1 (first ed.). Baltimore: The Williams & Wilkins Co. pp. 408–420.
^Loshon CA, Beary KE, Gouveia K, Grey EZ, Santiago-Lara LM, Setlow P (March 1998). "Nucleotide sequence of the sspE genes coding for gamma-type small, acid-soluble spore proteins from the round-spore-forming bacteria Bacillus aminovorans, Sporosarcina halophila and S. ureae". Biochimica et Biophysica Acta (BBA) - Gene Structure and Expression. 1396 (2): 148–152. doi:10.1016/S0167-4781(97)00204-2. PMID9540829.
^Ding Y, Wang J, Liu Y, Chen S (2005). "Isolation and identification of nitrogen-fixing bacilli from plant rhizospheres in Beijing region". Journal of Applied Microbiology. 99 (5): 1271–1281. doi:10.1111/j.1365-2672.2005.02738.x. PMID16238759. S2CID19917931.
^Ramesh A, Sharma SK, Sharma MP, Yadav N, Joshi OP (2014). "Inoculation of zinc solubilizing Bacillus aryabhattai strains for improved growth, mobilization and biofortification of zinc in soybean and wheat cultivated in Vertisols of central India". Applied Soil Ecology. 73: 87–96. Bibcode:2014AppSE..73...87R. doi:10.1016/j.apsoil.2013.08.009. ISSN0929-1393.
^Schallmey M, Singh A, Ward OP (January 2004). "Developments in the use of Bacillus species for industrial production". Canadian Journal of Microbiology. 50 (1): 1–17. doi:10.1139/w03-076. PMID15052317.
^Ash C, Priest FG, Collins MD (1994). "Molecular identification of rRNA group 3 bacilli (Ash, Farrow, Wallbanks and Collins) using a PCR probe test. Proposal for the creation of a new genus Paenibacillus". Antonie van Leeuwenhoek. 64 (3–4): 253–260. doi:10.1007/BF00873085. PMID8085788. S2CID7391845.
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