Targeted high-resolution quadrupole-Orbitrap mass spectrometry analyses reveal a significant reduction of tachykinin and opioid neuropeptides level in PC1 and PC2 mutant mouse spinal cords

被引:5
作者
Saidi, Mouna [1 ]
Beaudry, Francis [1 ]
机构
[1] Univ Montreal, Fac Med Vet, Dept Biomed Vet, GREPAQ, St Hyacinthe, PQ, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
Neuropeptides; Proteomics; Proprotein convertases; Nociception; Pain; Mass spectrometry; High performance liquid chromatography; SUBSTANCE-P; RAT MODEL; PEPTIDES; MODULATION; PAIN; RELEASE; MICE; EXPRESSION; DYNORPHIN; PROTEASES;
D O I
10.1016/j.npep.2017.04.007
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Tachykinin and opioid neuropeptides play a fundamental role in pain transmission, modulation and inhibition. The proteolysis control of endogenous tachykinin and opioid neuropeptides has a significant impact on pain perception. The role of proprotein convertases (PCs) in the proteolysis of proneuropeptides was previously established but very few studies have shown the direct impact of PCs on the regulation of specific tachykinin and opioid peptides in the central nervous system. There is an increasing interest in the therapeutic targeting of PCs for the treatment of pain but it is imperative to assess the impact of PCs on the pronociceptive and the endogenous opioid systems. The objective of this study was to determine the relative concentration of targeted neuropeptides in the spinal cord of WT, PC1(-/+) and PC2(-/+) animals to establish the impact of a restricted PCs activity on the regulation of specific neuropeptides. The analysis of tachykinin and opioid neuropeptides were performed on a HPLC-MS/MS (High-Resolution Quadrupole-Orbitrap Mass Spectrometer). The results revealed a significant decrease of Dyn A (p < 0.01), Leu-Enk (p < 0.001), Met-Enk (p < 0.001), Tach(58-71) (p < 0.05), SP (p < 0.01) and NKA (p < 0.001) concentrations in both, PC1(-/+) and PC2(-/+) animals. Therefore, the modulation of PCs activity has an important impact on specific pronociceptive peptides (SP and NKA), but the results also shown that endogenous opioid system is hindered and consequently it will affect significantly the pain modulatory pathways. These observations may have insightful impact on future analgesic drug developments and therapeutic strategies.
引用
收藏
页码:37 / 44
页数:8
相关论文
共 40 条
[11]  
Eisenmann David M, 2005, WormBook, P1, DOI 10.1895/wormbook.1.7.1
[12]   Determination of specific neuropeptides modulation time course in a rat model of osteoarthritis pain by liquid chromatography ion trap mass spectrometry [J].
Ferland, Catherine E. ;
Pailleux, Floriane ;
Vachon, Pascal ;
Beaudry, Francis .
NEUROPEPTIDES, 2011, 45 (06) :423-429
[13]   Unique biological function of cathepsin L in secretory vesicles for biosynthesis of neuropeptides [J].
Funkelstein, Lydiane ;
Beinfeld, Margery ;
Minokadeh, Ardalan ;
Zadina, James ;
Hook, Vivian .
NEUROPEPTIDES, 2010, 44 (06) :457-466
[14]   In Vivo Regulation of the μ Opioid Receptor: Role of the Endogenous Opioid Agents [J].
Gonzalez-Nunez, Veronica ;
Jimenez Gonzalez, Ada ;
Barreto-Valer, Katherine ;
Rodriguez, Raquel E. .
MOLECULAR MEDICINE, 2013, 19 :7-17
[15]   Substance P [J].
Harrison, S ;
Geppetti, P .
INTERNATIONAL JOURNAL OF BIOCHEMISTRY & CELL BIOLOGY, 2001, 33 (06) :555-576
[16]   Proteases for processing proneuropeptides into peptide neurotransmitters and hormones [J].
Hook, Vivian ;
Funkelstein, Lydiane ;
Lu, Douglas ;
Bark, Steven ;
Wegrzyn, Jill ;
Hwang, Shin-Rong .
ANNUAL REVIEW OF PHARMACOLOGY AND TOXICOLOGY, 2008, 48 :393-423
[17]   Neuropeptidomics Mass Spectrometry Reveals Signaling Networks Generated by Distinct Protease Pathways in Human Systems [J].
Hook, Vivian ;
Bandeira, Nuno .
JOURNAL OF THE AMERICAN SOCIETY FOR MASS SPECTROMETRY, 2015, 26 (12) :1970-1980
[18]  
Howard M.R., 2006, HDB NEUROCHEMISTRY M, P427
[19]   Proprotein covertases are responsible for proteolysis and inactivation of endothelial lipase [J].
Jin, WJ ;
Fuki, IV ;
Seidah, NG ;
Benjannet, S ;
Glick, JM ;
Rader, DJ .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2005, 280 (44) :36551-36559
[20]  
Kastin A., 2013, Handbook of Biologically Active Peptides