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The effect of pH and amino acids on conidiation and pigment production of Monascus major ATCC 16362 and Monascus rubiginosus ATCC 16367 in submerged shaken culture.

Monascus major ATCC 16362 and Monascus rubiginosus ATCC 16367 were cultivated aerobically on media containing nitrate or ammonium as nitrogen source to which the following modifications were made: (1) pH adjusted to 2.5 before sterilization; (2) addition of yeast extract; (3) addition of amino acids in identical proportions and concentrations to those found in yeast extract; (4) adjustment of pH to 2.5 after addition of amino acids. The addition of amino acids in the form of yeast extract increased mycelium formation and reduced conidiation and pigment production. The addition of an amino acid mixture did not increase mycelium formation to the same extent as yeast extract but increased the number of conidia, while pigment production was reduced, especially when nitrate was the nitrogen source. As the amino acids are taken up after conidial formation has started, it would appear that it is not the amino acids themselves which are directly responsible for the induction of conidiation. The addition of amino acids inhibits nitrate and ammonium uptake suggesting the need for an early intracellular nitrogen limitation to induce conidiation. Lowering the pH inhibits the formation of conidia and increases pigment production; also the effect of amino acid addition is totally annulled. The pH of the medium is all important in regulating the formation of conidia and pigment production. The possible effects of the pH on the uptake of certain medium components is discussed, as well as their possible control of certain metabolic pathways which ultimately determines the availability of intermediates for conidiation and pigment production.

Aerobiosis↗

Enhancement of monascus pigment production by the culture of Monascus sp. J101 at low temperature.

In general, high broth viscosity is a key factor to be considered in a submerged fermentation of filamentous fungi. High broth viscosity was also observed in a batch fermentation of Monascus sp. J101 at 30 degrees C. In a batch culture at 30 degrees C, most cell growth was accomplished within 48 h, which induced highly entangled clumps. The resultant high viscosity induced heterogeneity inside the fermentor, poor oxygen transfer, and low pigment yield. However, these problems could be overcome by reducing fungal growth rate through culture at low temperature (25 degrees C). Cell growth was moderate and continued for 120 h, and low viscosity was maintained. The DO levels remained at 50% or higher with good mixing. As a result, the pigment yield at 25 degrees C was 10 times greater than at 30 degrees C.

Cell Division↗

In vivo hypolipidemic effects and safety of low dosage Monascus powder in a hamster model of hyperlipidemia.

Monascus or more commonly known as red mold rice is fermented rice on which Monascus purpureus has been grown. It has been a traditional Chinese food additive for thousands of years in China. Secondary metabolite product of Monascus, monacolin K, has been proven that it could be used as an antihypercholesterolemic agent. In this study, M. purpureus NTU568 mutated and selected from a monacolin K productivity strain-M. purpureus HM105 produced high quantities of monacolin K at a level of 9,500 mg kg(-1). This research focused on the effect of adding red mold rice powder of M. purpureus NTU568 to a hamster diet on total cholesterol (TC), triglyceride (TG), high-density lipoprotein cholesterol, and low-density lipoprotein cholesterol (LDL-C). In the results, the oral administration of Monascus powder in hyperlipidemia hamster was indeed proven to decrease TC, TG, and LDL-C levels. Plasma TC levels in hamster fed with Monascus powder at one-fold dosage [10.78 mg (day 100 g bw)(-1)] for 4 and 8 weeks were significantly lower (31.2 and 22.0%, respectively) than that in hyperlipidemia hamster. Plasma TG (30.1 and 17.9%) and LDL-C levels (36.0 and 20.7%) were also significantly lowered by feeding Monascus powder at one-fold dosage for 4 and 8 weeks compared to hyperlipidemia hamster. In addition, examinations of liver TC and TG levels of hyperlipidemia hamster were also performed and showed similar effects on lipid-lowering action by oral administration of Monascus powder. Since citrinin is a mycotoxin that possesses nephrotoxic and hepatoxic effects, it has a negative impact on the safety of red mold rice for people. This study examined the liver somatic index [plasma glutamyl oxaloacetic transaminase (GOT) and glutamyl pyruvic transaminase (GPT) levels] and liver biopsy to investigate whether Monascus powder induced damage in liver. It was found that the plasma GOT and GPT levels were not significantly increased by feeding Monascus powder. There was no difference in the results of the liver biopsy between the Monascus powder-treated groups and the control group.

Animals↗

Morphological change and enhanced pigment production of monascus when cocultured with saccharomyces cerevisiae or aspergillus oryzae

When a Monascus isolate, a producer of Monascus pigments, was cocultured with either Saccharomyces cerevisiae or Aspergillus oryzae in a solid sucrose medium, there were significant morphological changes in Monascus culture. Cocultures exhibited cell mass increases of 2 times and pigment yield increases of 30 to 40 times compared to monocultures of Monascus. However, enhanced cell growth, an increase in pigment production, and morphological change did not occur in coculture with Bacillus cereus. Saccharomyces cerevisiae was more effective at enhancing pigment production than Asp. oryzae. Enhanced cell growth and increased pigment production occurred only in conjunction with morphological changes. Culture filtrates of S. cerevisiae were also effective in inducing morphology change in Monascus, similar to culture broths of S. cerevisiae. The hydrolytic enzymes produced by S. cerevisiae, such as amylase, and chitinase, are thought to be the effectors. The commercial enzymes alpha-amylase and protease from Asp. oryzae both caused a morphological change in Monascus and were effective in enhancing pigment production. However, lysozyme, alpha-amylase and protease from Bacillus species, protease from Staphylococcus, and chitinase from Streptomyces were not effective. The hydrolytic enzymes which cause a morphological change of Monascus culture and enhancement of pigment production are thought to be capable of degrading Monascus cell walls. An approximate 10-fold increase in pigment production was observed in liquid cocultures with S. cerevisiae. Copyright 1998 John Wiley & Sons, Inc.

Journal Article↗

Evaluation of citrinin occurrence and cytotoxicity in Monascus fermentation products.

Monascus purpureus and its fermentation products have been used in food coloring and meat preservation in Asia for centuries and have also been recently used as dietary supplements because of their cholesterol-lowering ability. However, the presence of the mycotoxin citrinin (CTN), a secondary metabolite of Monascus species, in fermentation products is a potential threat to public health. In the present study, HPLC was used to analyze CTN levels in lipid and aqueous extracts of commercialized Monascus products. CTN was detected in lipid extracts of all examined samples at concentrations varying between 0.28 and 6.29 microg/g, but was not found in aqueous extracts. When human embryonic kidney cells (HEK293) were incubated for 72 h with Monascus extracts, the concentrations causing 50% cell death by all lipid extracts were in the range of 1.8-4.7 mg/mL, whereas aqueous extracts showed a lower cytotoxicity. Incubation of HEK293 cells with 60 microM pure CTN for 72 h caused cell viability to fall to 50% of control levels. In addition, coadministration of pure CTN and lipid extracts from Monascus samples significantly enhanced CTN cytotoxicity for HEK293 cells using the MTT assay. These results provide the first information about the cytotoxic effects of various Monascus samples and CTN-Monascus mixtures on a human cell line.

Cell Death↗

Monascus fermentation of dioscorea for increasing the production of cholesterol-lowering agent--monacolin K and antiinflammation agent--monascin.

Monacolin K, an inhibitor for cholesterol synthesis, is the secondary metabolite of Monascus species. The formation of the secondary metabolites of the Monascus species is affected by cultivation environment and method. This research uses sweet potato (Ipomoea batatas), potato (Solanum tuberosum), casava (Manihot esculenta), and dioscorea (Dioscorea batatas) as the substrates and discusses the best substrate to produce monacolin K. The results show that Monascus purpureus NTU 301, with dioscorea as the substrate, can produce monacolin K at 2,584 mg kg(-1), which is 5.37 times to that resulted when rice is used as the substrate. In addition, more amount of yellow pigment can be found in Monascus-fermented dioscorea than in Monascus-fermented rice. The certain composition of yellow pigment is identified as monascin, which has been shown as an antiinflammation agent exhibiting potent inhibitory effects on 12-O-tetradecanoylphorbol-13-acetate (TPA)-induced inflammation in mice in previous studies. Therefore, dioscorea is concluded to be the best substrate for Monascus species to produce the cholesterol-lowering agent-monacolin K and antiinflammation agent-monascin.

Anti-Inflammatory Agents, Non-Steroidal↗

Mutagenicity of commercial Monascus fermentation products and the role of citrinin contamination.

Pigments produced as secondary metabolites by various isolates of moulds belonging to the genus Monascus have been used traditionally as colorants in Oriental food. Modern food industry has rediscovered these moulds as promising source for natural colorants. However, recent studies evidence that one of the secondary metabolites produced by Monascus is identical in structure to the mycotoxin citrinin. Thus, a sensitive HPLC method was developed to analyse these food colorants for contamination with citrinin. The mycotoxin could be detected in all the commercial Monascus samples at concentrations varying between 0.2 to 17.1 microg/g. In addition, the mutagenicity of commercial Monascus samples applying Salmonella-microsome assay and Salmonella-hepatocyte-assay was investigated and compared to the results obtained with citrinin. Citrinin and two Monascus extracts induced a positive dose depending mutagenic response in the Salmonella-hepatocyte-assay applying strain TA-98. However, no mutagenicity could be detected in the Salmonella-microsome assay, neither with nor without S9-mix, for citrinin and Monascus extracts, applying TA-98, TA-100, TA-1535, TA-1538 and TA-97. These findings provide further evidence that citrinin requires complex cellular biotransformation to exert mutagenicity.

Animals↗

Proteomic response to intracellular proteins of Monascus pilosus grown under phosphate-limited complex medium with different growth rates and pigment production.

Monascus pigments are important colorings in food applications. Rice containing potassium phosphate and sodium nitrate was reported as a good pigment-producing medium for Monascus in previous studies. We found that the lack of potassium phosphate in this medium depressed red pigment production in cultivated Monascus pilosus. However, the influence of phosphate limitation on the biochemical metabolisms concerning culture growth and pigment production in Monascus remains unknown. Here, we used proteomic analysis by two-dimensional gel electrophoresis, matrix-assisted laser desorption ionization time-of-flight/time-of-flight mass spectrometry (MALDI-TOF/TOF MS), tandem mass spectrometry (MS/MS), and database interrogation to separate and identify the proteins of M. pilosus grown between the lack of potassium phosphate and the control media. Phosphate limitation to this complex medium induced an up-regulation of aldehyde dehydrogenase and several glycolytic enzymes in Monascus relative to the control. In contrast, the metabolic enzymes such as glucosamine:fructose-6-phosphate aminotransferase and ADP-ribosylation factor 1 were up-regulated in the control.

Electrophoresis, Gel, Two-Dimensional↗

Efficacy and safety of Monascus purpureus Went rice in subjects with hyperlipidemia.

OBJECTIVE: The purpose of this study was to assess the lipid-lowering effect of Monascus purpureus Went rice on serum lipids in patients with hyperlipidemia, and to assess its safety by reporting adverse events and clinical laboratory measurements. DESIGN AND METHODS: This was a randomized, double-blind, placebo-controlled study. In all, 79 patients (aged 23-65 years) with a mean baseline low-density lipoprotein cholesterol (LDL-C) level of 5.28 mmol/l (203.9 mg/dl) received a twice daily dose of placebo or Monascus purpureus Went rice (600 mg) for 8 weeks. RESULTS: At week 8, Monascus purpureus Went rice therapy reduced LDL-C by 27.7%, total cholesterol by 21.5%, triglycerides by 15.8% and apolipoprotein B by 26.0%. High-density lipoprotein cholesterol and apolipoprotein A-I levels were increased by 0.9 and 3.4% respectively (not significant). No patient in the Monascus purpureus Went rice treatment group had an alanine aminotransferase (ALT), aspartate aminotransferase (AST) or creatine phosphokinase (CPK) measurement that was > or = 3 times the upper limit of normal at week 4 and week 8. CONCLUSION: Monascus purpureus Went rice significantly reduced LDL-C, total cholesterol, triglycerides and apolipoprotein B levels, and was well tolerated in patients with hyperlipidemia. However, this study only provides data from an 8-week trial and long-term safety and efficacy data are needed.

Adult↗

[Natural occurrence of citrinin in Monascus products].

OBJECTIVE: In order to survey the natural occurrence of citrinin in Monascus products. METHODS: A total of 114 samples with either solid or liquid phases, collected from markets or delivered by the food production factories were analyzed by HPLC for citrinin. RESULTS: The results revealed that 68 (59.65%) samples were positive for citrinin with the levels between 0.18 and 1739.23 mg/kg (211.61 mg/kg for the average and 6.62 mg/kg for the median, respectively). The concentration of cirtrinin in various Monascus products is different. Twenty-five red pigment samples of Monascus were heavily contaminated with citrinin at the level ranged from 0.85 - 1739.93 mg/kg (average 508.40 mg/kg, median 169.88 mg/kg). Twelve of 19 red rice samples fermented by Monoscus species were not citrinin-free but 83.33% (10/12) with the citrinin levels below 10 mg/kg. The level of citrinin in 84% (21/25) health meals of Monascus is less than 6 mg/kg. CONCLUSION: The domestic Monascus products were contaminated by citrinin and the ratio of color value/citrinin in 15 (13.16%) samples exceeds the Japanese national standard.

Biological Products↗

Physiological analysis on novel coculture of Monascus sp. J101 with Saccharomyces cerevisiae.

During the fermentation process of Monascus 3101, coculture with Saccharomyces cerevisiae culture filtrate stimulated the formation of reproductive spores, which subsequently resulted in accelerated Monascus cell reproduction and proliferation. Protein kinase C activity was also detected. Chitinase (EC 3.2.1.14), a 120-kDa secretory protein, was purified from the S. cerevisiae culture filtrate as the effector. Monascus cells cocultured with a S. cerevisiae culture filtrate contained approximately four times more total lipids (mainly linoleic and oleic acid) than Monascus cells without coculture. Addition of exogenous fatty acids only contributed to an increase in cell mass. There was no effect on spore formation or pigment production. There were significant changes in patterns and amounts of expressed proteins in cocultured Monascus cells compared to control cells with no coculture.

Ascomycota↗

[Study on the production of citrinin by Monascus strains used in food industry].

In order to screen strains with less or nearly no production of citrinin, thirty-five Monascus strains used in food industry were selected to investigate the effect of cultivation condition and the medium composition on citrinin production. The results from the study indicated that all strains produced citrinin on the rice with the levels ranging from 0.28 to 2458.80 mg/kg (201.60 mg/kg for the average and 61.99 mg/kg for the median, respectively), while 30 strains (85.71%) yielded this toxin on the submerged culture with the concentration between 0.09 and 55.65 mg/kg (11.99 mg/kg for the average and 3.51 mg/kg for the median, respectively). Therefore, citrinin production in rice in this study was higher than that in the liquid. In addition, the red pigment production in rice was 3-509 (average 93) times higher than that in the liquid. One strain with the highest color value (1134 U/g) but lower citrinin production in rice was obtained. These results suggested that it is necessary to make the safety evaluation of microorganisms for the production of foods and food ingredients, to investigate the ability of citrinin production by Monascus strains preserved by either the food manufacturer or the national culture collection units and, to survey the citrinin contamination in Monascus products countrywide. It is urgent for China to establish the tolerance limit of citrinin in foods fermented by Monascus species.

Citrinin↗

[Comparison of different transformation methods for Monascus sp].

In order to facilitate the producer of polyketide pathway, four different transformation methods were tested and compared in an attempt to develop the genetic transformation system of Monascus sp. Using vector pBC-Hygro, the fungus was transformed to be hygromycin B-resistant, by conventional transformation as well as electroporation based on protoplast, electroporation based on germinated conidia, and restriction enzyme-mediated integration (REMI). Electroporation based on germinated conidia was found to be inappropriate for transforming Monascus sp. due to a low transformation frequency. The conventional transformation and electroporation technique based on protoplasts were thought not to be fit for transforming Monascus sp., due to a low stability of transformants though they yielded up to 135 transformants and 125 transformants per microgrammol/Lol/Le DNA, respectively. Transformant number was increased by 20-fold by REMI (2,500 transformants per microgrammol/Lol/Le DNA) and 70%-75% of them were stable. REMI technique would be very beneficial to the establishment of the genetic transformation system of Monascus sp.

DNA, Recombinant↗

Characterization of monascidin A from Monascus as citrinin.

Following our investigations on red pigments and monascidin co-production by Monascus species, the antibiotic called monascidin A was characterized as citrinin. Evidence was given by qualitative methods, mass spectra and NMR. Citrinin, a nephrotoxic agent was produced both by Monascus purpureus and Monascus ruber, either in submerged culture of concentrations of 270 and 340 mg/l, respectively, or in solid state culture of concentration of 100 and 300 mg/kg dried matter, respectively. Since citrinin is a toxic product, it is essential that the production of red pigments as food additives from Monascus spp. avoid the occurrence of citrinin.

Bacteria↗

Analysis of the morphologic changes of Monascus sp. J101 cells cocultured with Saccharomyces cerevisiae.

Changes in cell life cycle and intracellular structure of Monascus sp. J101 by coculture with Saccharomyces cerevisiae were investigated. Cocultured Monascus cells showed accelerated cell growth and reproduction. Production of asexual and sexual spores was used as an efficient method of cell proliferation. Formation of meiotic (sexual) spores was more frequently observed in the cocultured Monascus cells. The interior structure of a cocultured cell was characterized by increased numbers and sizes of vacuoles. The vacuoles probably serve as repositories for pigment storage. Pigments produced by the cocultured Monascus cells were more hydrophobic than pigments produced by control cells with no coculture.

Ascomycota↗

Pigment Production from Immobilized Monascus sp. Utilizing Polymeric Resin Adsorption.

Pigment production by the fungus Monascus sp. was studied to determine why Monascus sp. provides more pigment in solid culture than in submerged culture. Adding a sterilized nonionic polymeric adsorbent resin directly to the growing submerged culture did not enhance the pigment production, thus indicating that pigment extraction is probably not a factor. Monascus cells immobilized in hydrogel were studied and exhibited decreased pigment production as a result of immobilization. This result is thought to be due to diffusional resistance of the pigment through the hydrogel beads. Addition of the adsorbent resin to the immobilized Monascus culture increased both the maximum pigment yield and the production rate above those of the free-cell fermentations. The provision of a support for the mycelium may explain enhanced pigment production by the solid-state culture. These results indicate that product diffusion from immobilized cell systems can be the limiting factor and that in situ extraction is one possible way to circumvent this problem.

Journal Article↗

Chromosome-Scale Genome Analysis Reveals Locus-Specific Disruption of the Citrinin-Associated Region in a Furu-Derived Monascus ruber Strain BC20.

Monascus species are widely used in traditional fermented foods for pigment and flavor formation, but citrinin contamination remains a major safety concern that limits broader food applications. Therefore, this study aimed to evaluate the citrinin risk of a furu-derived Monascus ruber strain, BC20, by integrating phenotypic screening across food-relevant matrices with genome-resolved analysis. After 14 days of cultivation across eight matrices, including fungal media as well as dairy-, cereal-, and bran-based substrates, citrinin was not detected by immunoaffinity cleanup combined with HPLC-FLD (LOD, 4 μg/kg; LOQ, 12 μg/kg). To investigate the genetic basis of this phenotype, we generated a chromosome-scale genome assembly for BC20 and conducted comparative analyses across a total of 19 Monascus genomes. ANI analysis and phylogenomic inference consistently placed BC20 within the ruber-pilosus clade. Comparative synteny analysis showed that the citrinin-associated locus in BC20 no longer retained an intact cluster configuration but instead exhibited a remnant-locus architecture, and similar patterns were also observed in several related genomes from the same clade. By contrast, the monacolin K (mk) locus remained syntenically conserved in BC20, supporting locus-specific structural disturbance rather than assembly-derived pseudo-absence. Additionally, its antifungal susceptibility was determined. Overall, BC20 represents a M. ruber candidate strain with undetectable citrinin, and this study provides a practical analytical framework for citrinin risk screening in food-related Monascus isolates.

biosynthetic gene cluster↗

[Effect of monascus on improving the hemorheology of rats with high blood lipids].

The effects of monascus on the hemorheology of rats with high blood lipids were observed. Wistar rats were fed with high cholesterol to establish a model of hypercholesterolemia. Monascus at the dosage of 0.0, 0.6, 1.2 g/(d.kg BW) was administrated for 28 days. Normal control group was fed with standard rat chow. Rats in 0.0 g/kg BW group became hypercholesterolemia clearly. Monascus decreased TC, TG, and increased HDL-C significantly in the experimental groups. Monascus can significantly increase the deformability of erythrocyte(IDEI) and decrease aggregation index(AI), platelet adhesion rate(PADT) and blood viscosity at the shear rate of 5 s-1. No significant difference of platelet aggregation (PAGT) in groups was observed.

Animals↗