TY - JOUR
T1 - Regulatory implications of non-trivial splicing
T2 - Isoform 3 of Rab1A shows enhanced basal activity and is not controlled by accessory proteins
AU - Schöppner, Patricia
AU - Csaba, Gergely
AU - Braun, Tatjana
AU - Daake, Marina
AU - Richter, Bettina
AU - Lange, Oliver F.
AU - Zacharias, Martin
AU - Zimmer, Ralf
AU - Haslbeck, Martin
N1 - Publisher Copyright:
© 2016 Elsevier Ltd All rights reserved.
PY - 2016/4/24
Y1 - 2016/4/24
N2 - Alternative splicing often affects structured and highly conserved regions of proteins, generating so called non-trivial splicing variants of unknown structure and cellular function. The human small G-protein Rab1A is involved in the regulation of the vesicle transfer from the ER to Golgi. A conserved non-trivial splice variant lacks nearly 40% of the sequence of the native Rab1A, including most of the regulatory interaction sites. We show that this variant of Rab1A represents a stable and folded protein, which is still able to bind nucleotides and co-localizes with membranes. Nevertheless, it should be mentioned that compared to other wild-typeRabGTPases, the measured nucleotide binding affinities are dramatically reduced in the variant studied. Furthermore, the Rab1A variant forms hetero-dimers with wild-type Rab1A and its presence in the cell enhances the efficiency of alkaline phosphatase secretion. However, this variant shows no specificity for GXP nucleotides, a constantly enhanced GTP hydrolysis activity and is no longer controlled by GEF or GAP proteins, indicating a new regulatory mechanism for the Rab1A cycle via alternative non-trivial splicing.
AB - Alternative splicing often affects structured and highly conserved regions of proteins, generating so called non-trivial splicing variants of unknown structure and cellular function. The human small G-protein Rab1A is involved in the regulation of the vesicle transfer from the ER to Golgi. A conserved non-trivial splice variant lacks nearly 40% of the sequence of the native Rab1A, including most of the regulatory interaction sites. We show that this variant of Rab1A represents a stable and folded protein, which is still able to bind nucleotides and co-localizes with membranes. Nevertheless, it should be mentioned that compared to other wild-typeRabGTPases, the measured nucleotide binding affinities are dramatically reduced in the variant studied. Furthermore, the Rab1A variant forms hetero-dimers with wild-type Rab1A and its presence in the cell enhances the efficiency of alkaline phosphatase secretion. However, this variant shows no specificity for GXP nucleotides, a constantly enhanced GTP hydrolysis activity and is no longer controlled by GEF or GAP proteins, indicating a new regulatory mechanism for the Rab1A cycle via alternative non-trivial splicing.
KW - non-trivial splicing
KW - protein folding
KW - protein secretion
KW - Rab1A
UR - https://www.scopus.com/pages/publications/84961221145
U2 - 10.1016/j.jmb.2016.02.028
DO - 10.1016/j.jmb.2016.02.028
M3 - Article
C2 - 26953259
AN - SCOPUS:84961221145
SN - 0022-2836
VL - 428
SP - 1544
EP - 1557
JO - Journal of Molecular Biology
JF - Journal of Molecular Biology
IS - 8
ER -