7. Russell TM, Green LS, Rice T et al (2017)
Potential of high-affinity, slow off-rate modified aptamer reagents for Mycobacterium
tuberculosis proteins as tools for infection
models and diagnostic applications. J Clin
Microbiol 55:3072–3088. https://doi.org/
10.1128/JCM.00469-17
8. Golichenari B, Velonia K, Nosrati R et al
(2018) Label-free nano-biosensing on the
road to tuberculosis detection. Biosens Bioelectron 113:124–135
9. Delogu G, Manganelli R, Brennan MJ (2014)
Critical research concepts in tuberculosis vaccine development. Clin Microbiol Infect
20:59–65
10. Liu L, Zhang WJ, Zheng J et al (2014) Exploration of novel cellular and serological antigen
biomarkers in the orfeome of Mycobacterium
tuberculosis.
Mol
Cell
Proteomics
13:897–906. https://doi.org/10.1074/mcp.
M113.032623
11. Shekhawat SD, Jain RK, Gaherwar HM et al
(2014) Heat shock proteins: possible biomarkers in pulmonary and extrapulmonary tuberculosis. Hum Immunol 75:151–158. https://
doi.org/10.1016/j.humimm.2013.11.007
12. Wallis RS, Kim P, Cole S et al (2013) Tuberculosis biomarkers discovery: developments,
needs, and challenges. Lancet Infect Dis
13:362–372
13. Mehaffy C, Dobos KM, Nahid P, Kruh-Garcia
NA (2017) Second generation multiple reaction monitoring assays for enhanced detection
of ultra-low abundance Mycobacterium tuberculosis peptides in human serum. Clin Proteomics 14. https://doi.org/10.1186/s12014017-9156-y
14. Gcebe
N,
Hlokwe
TM
(2017)
Non-tuberculous
mycobacteria
in
South African wildlife: neglected pathogens
and potential impediments for bovine tuberculosis diagnosis. Front Cell Infect Microbiol
7.
https://doi.org/10.3389/fcimb.2017.
00015
15. Jenkins AO, Gormley E, Gcebe N et al (2018)
Cross reactive immune responses in cattle arising from exposure to Mycobacterium bovis and
non-tuberculous mycobacteria. Prev Vet Med
152:16–22. https://doi.org/10.1016/j.pre
vetmed.2018.02.003
16. Lamont EA, Janagama HK, Ribeiro-Lima J
et al (2014) Circulating Mycobacterium bovis
peptides and host response proteins as biomarkers for unambiguous detection of subclinical
infection. J Clin Microbiol 52:536–543.
https://doi.org/10.1128/JCM.02433-13
17. Prevots DR, Shaw PA, Strickland D et al
(2010) Nontuberculous mycobacterial lung
disease prevalence at four integrated health
care delivery systems. Am J Respir Crit Care
Med
182:970–976.
https://doi.org/10.
1164/rccm.201002-0310OC
18. Wentworth AB, Drage LA, Wengenack NL
et al (2013) Increased incidence of cutaneous
nontuberculous mycobacterial infection, 1980
to 2009: a population-based study. Mayo Clin
Proc 88:38–45. https://doi.org/10.1016/j.
mayocp.2012.06.029
19. Hirschfield GR, McNeil M, Brennan PJ (1990)
Peptidoglycan-associated polypeptides of
Mycobacterium tuberculosis. J Bacteriol
172:1005–1013. https://doi.org/10.1128/
jb.172.2.1005-1013.1990
20. Konigsberg WH, Henderson L (1983)
Removal of sodium dodecyl sulfate from proteins by ion-pair extraction. Methods Enzymol
91:254–259.
https://doi.org/10.1016/
S0076-6879(83)91022-4
Extraction and Separation of Mycobacterial Proteins
107
Potential of high-affinity, slow off-rate modified aptamer reagents for Mycobacterium
tuberculosis proteins as tools for infection
models and diagnostic applications. J Clin
Microbiol 55:3072–3088. https://doi.org/
10.1128/JCM.00469-17
8. Golichenari B, Velonia K, Nosrati R et al
(2018) Label-free nano-biosensing on the
road to tuberculosis detection. Biosens Bioelectron 113:124–135
9. Delogu G, Manganelli R, Brennan MJ (2014)
Critical research concepts in tuberculosis vaccine development. Clin Microbiol Infect
20:59–65
10. Liu L, Zhang WJ, Zheng J et al (2014) Exploration of novel cellular and serological antigen
biomarkers in the orfeome of Mycobacterium
tuberculosis.
Mol
Cell
Proteomics
13:897–906. https://doi.org/10.1074/mcp.
M113.032623
11. Shekhawat SD, Jain RK, Gaherwar HM et al
(2014) Heat shock proteins: possible biomarkers in pulmonary and extrapulmonary tuberculosis. Hum Immunol 75:151–158. https://
doi.org/10.1016/j.humimm.2013.11.007
12. Wallis RS, Kim P, Cole S et al (2013) Tuberculosis biomarkers discovery: developments,
needs, and challenges. Lancet Infect Dis
13:362–372
13. Mehaffy C, Dobos KM, Nahid P, Kruh-Garcia
NA (2017) Second generation multiple reaction monitoring assays for enhanced detection
of ultra-low abundance Mycobacterium tuberculosis peptides in human serum. Clin Proteomics 14. https://doi.org/10.1186/s12014017-9156-y
14. Gcebe
N,
Hlokwe
TM
(2017)
Non-tuberculous
mycobacteria
in
South African wildlife: neglected pathogens
and potential impediments for bovine tuberculosis diagnosis. Front Cell Infect Microbiol
7.
https://doi.org/10.3389/fcimb.2017.
00015
15. Jenkins AO, Gormley E, Gcebe N et al (2018)
Cross reactive immune responses in cattle arising from exposure to Mycobacterium bovis and
non-tuberculous mycobacteria. Prev Vet Med
152:16–22. https://doi.org/10.1016/j.pre
vetmed.2018.02.003
16. Lamont EA, Janagama HK, Ribeiro-Lima J
et al (2014) Circulating Mycobacterium bovis
peptides and host response proteins as biomarkers for unambiguous detection of subclinical
infection. J Clin Microbiol 52:536–543.
https://doi.org/10.1128/JCM.02433-13
17. Prevots DR, Shaw PA, Strickland D et al
(2010) Nontuberculous mycobacterial lung
disease prevalence at four integrated health
care delivery systems. Am J Respir Crit Care
Med
182:970–976.
https://doi.org/10.
1164/rccm.201002-0310OC
18. Wentworth AB, Drage LA, Wengenack NL
et al (2013) Increased incidence of cutaneous
nontuberculous mycobacterial infection, 1980
to 2009: a population-based study. Mayo Clin
Proc 88:38–45. https://doi.org/10.1016/j.
mayocp.2012.06.029
19. Hirschfield GR, McNeil M, Brennan PJ (1990)
Peptidoglycan-associated polypeptides of
Mycobacterium tuberculosis. J Bacteriol
172:1005–1013. https://doi.org/10.1128/
jb.172.2.1005-1013.1990
20. Konigsberg WH, Henderson L (1983)
Removal of sodium dodecyl sulfate from proteins by ion-pair extraction. Methods Enzymol
91:254–259.
https://doi.org/10.1016/
S0076-6879(83)91022-4
Extraction and Separation of Mycobacterial Proteins
107
