Biotin Auxotrophy and Biotin Enhanced Germ Tube Formation in Candida albicans

Due to the increased number of immunocompromised patients, infections with the pathogen Candida albicans have significantly increased in recent years. C. albicans transition from yeast to germ tubes is one of the essential factors for virulence. In this study we noted that Lee’s medium, commonly use...

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Main Authors: Nur Ahmad Hussin, Ruvini U. Pathirana, Sahar Hasim, Swetha Tati, Jessica A. Scheib-Owens, Kenneth W. Nickerson
Format: Article
Language:English
Published: MDPI AG 2016-09-01
Series:Microorganisms
Subjects:
Online Access:http://www.mdpi.com/2076-2607/4/3/37
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spelling doaj-4ab9891ad7b84d648a1a188ecc56ccbb2020-11-24T23:09:06ZengMDPI AGMicroorganisms2076-26072016-09-01433710.3390/microorganisms4030037microorganisms4030037Biotin Auxotrophy and Biotin Enhanced Germ Tube Formation in Candida albicansNur Ahmad Hussin0Ruvini U. Pathirana1Sahar Hasim2Swetha Tati3Jessica A. Scheib-Owens4Kenneth W. Nickerson5School of Biological Sciences, University of Nebraska, Lincoln, NE 68588, USASchool of Biological Sciences, University of Nebraska, Lincoln, NE 68588, USASchool of Biological Sciences, University of Nebraska, Lincoln, NE 68588, USASchool of Biological Sciences, University of Nebraska, Lincoln, NE 68588, USASchool of Biological Sciences, University of Nebraska, Lincoln, NE 68588, USASchool of Biological Sciences, University of Nebraska, Lincoln, NE 68588, USADue to the increased number of immunocompromised patients, infections with the pathogen Candida albicans have significantly increased in recent years. C. albicans transition from yeast to germ tubes is one of the essential factors for virulence. In this study we noted that Lee’s medium, commonly used to induce filamentation, contained 500-fold more biotin than needed for growth and 40-fold more biotin than is typically added to growth media. Thus, we investigated the effects of excess biotin on growth rate and filamentation by C. albicans in different media. At 37 °C, excess biotin (4 µM) enhanced germ tube formation (GTF) ca. 10-fold in both Lee’s medium and a defined glucose-proline medium, and ca. 4-fold in 1% serum. Two biotin precursors, desthiobiotin and 7-keto-8-aminopelargonic acid (KAPA), also stimulated GTF. During these studies we also noted an inverse correlation between the number of times the inoculum had been washed and the concentration of serum needed to stimulate GTF. C. albicans cells that had been washed eight times achieved 80% GTF with only 0.1% sheep serum. The mechanism by which 1–4 µM biotin enhances GTF is still unknown except to note that equivalent levels of biotin are needed to create an internal supply of stored biotin and biotinylated histones. Biotin did not restore filamentation for any of the four known filamentation defective mutants tested. C. albicans is auxotrophic for biotin and this biotin auxotrophy was fulfilled by biotin, desthiobiotin, or KAPA. However, biotin auxotrophy is not temperature dependent or influenced by the presence of 5% CO2. Biotin starvation upregulated the biotin biosynthetic genes BIO2, BIO3, and BIO4 by 11-, 1500-, and 150-fold, respectively, and BIO2p is predicted to be mitochondrion-localized. Based on our findings, we suggest that biotin has two roles in the physiology of C. albicans, one as an enzymatic cofactor and another as a morphological regulator. Finally, we found no evidence supporting prior claims that C. albicans only forms hyphae at very low biotin (0.1 nM) growth conditions.http://www.mdpi.com/2076-2607/4/3/37germ-tube formationsdesthiobiotinLee’s medium7-keto-8-aminopelargonic acid (KAPA)upregulation of BIO2BIO3BIO4mitochondrial BIO2biotin starvation
collection DOAJ
language English
format Article
sources DOAJ
author Nur Ahmad Hussin
Ruvini U. Pathirana
Sahar Hasim
Swetha Tati
Jessica A. Scheib-Owens
Kenneth W. Nickerson
spellingShingle Nur Ahmad Hussin
Ruvini U. Pathirana
Sahar Hasim
Swetha Tati
Jessica A. Scheib-Owens
Kenneth W. Nickerson
Biotin Auxotrophy and Biotin Enhanced Germ Tube Formation in Candida albicans
Microorganisms
germ-tube formations
desthiobiotin
Lee’s medium
7-keto-8-aminopelargonic acid (KAPA)
upregulation of BIO2
BIO3
BIO4
mitochondrial BIO2
biotin starvation
author_facet Nur Ahmad Hussin
Ruvini U. Pathirana
Sahar Hasim
Swetha Tati
Jessica A. Scheib-Owens
Kenneth W. Nickerson
author_sort Nur Ahmad Hussin
title Biotin Auxotrophy and Biotin Enhanced Germ Tube Formation in Candida albicans
title_short Biotin Auxotrophy and Biotin Enhanced Germ Tube Formation in Candida albicans
title_full Biotin Auxotrophy and Biotin Enhanced Germ Tube Formation in Candida albicans
title_fullStr Biotin Auxotrophy and Biotin Enhanced Germ Tube Formation in Candida albicans
title_full_unstemmed Biotin Auxotrophy and Biotin Enhanced Germ Tube Formation in Candida albicans
title_sort biotin auxotrophy and biotin enhanced germ tube formation in candida albicans
publisher MDPI AG
series Microorganisms
issn 2076-2607
publishDate 2016-09-01
description Due to the increased number of immunocompromised patients, infections with the pathogen Candida albicans have significantly increased in recent years. C. albicans transition from yeast to germ tubes is one of the essential factors for virulence. In this study we noted that Lee’s medium, commonly used to induce filamentation, contained 500-fold more biotin than needed for growth and 40-fold more biotin than is typically added to growth media. Thus, we investigated the effects of excess biotin on growth rate and filamentation by C. albicans in different media. At 37 °C, excess biotin (4 µM) enhanced germ tube formation (GTF) ca. 10-fold in both Lee’s medium and a defined glucose-proline medium, and ca. 4-fold in 1% serum. Two biotin precursors, desthiobiotin and 7-keto-8-aminopelargonic acid (KAPA), also stimulated GTF. During these studies we also noted an inverse correlation between the number of times the inoculum had been washed and the concentration of serum needed to stimulate GTF. C. albicans cells that had been washed eight times achieved 80% GTF with only 0.1% sheep serum. The mechanism by which 1–4 µM biotin enhances GTF is still unknown except to note that equivalent levels of biotin are needed to create an internal supply of stored biotin and biotinylated histones. Biotin did not restore filamentation for any of the four known filamentation defective mutants tested. C. albicans is auxotrophic for biotin and this biotin auxotrophy was fulfilled by biotin, desthiobiotin, or KAPA. However, biotin auxotrophy is not temperature dependent or influenced by the presence of 5% CO2. Biotin starvation upregulated the biotin biosynthetic genes BIO2, BIO3, and BIO4 by 11-, 1500-, and 150-fold, respectively, and BIO2p is predicted to be mitochondrion-localized. Based on our findings, we suggest that biotin has two roles in the physiology of C. albicans, one as an enzymatic cofactor and another as a morphological regulator. Finally, we found no evidence supporting prior claims that C. albicans only forms hyphae at very low biotin (0.1 nM) growth conditions.
topic germ-tube formations
desthiobiotin
Lee’s medium
7-keto-8-aminopelargonic acid (KAPA)
upregulation of BIO2
BIO3
BIO4
mitochondrial BIO2
biotin starvation
url http://www.mdpi.com/2076-2607/4/3/37
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