| Literature DB >> 24872838 |
Alessandra Rocchetti1, Chris Hawes1, Verena Kriechbaumer1.
Abstract
BACKGROUND: Certain members of the Camelidae family produce a special type of antibody with only one heavy chain. The antigen binding domains are the smallest functional fragments of these heavy-chain only antibodies and as a consequence have been termed nanobodies. Discovery of these nanobodies has allowed the development of a number of therapeutic proteins and tools. In this study a class of nanobodies fused to fluorescent proteins (chromobodies), and therefore allowing antigen-binding and visualisation by fluorescence, have been used. Such chromobodies can be expressed in living cells and used as genetically encoded immunocytochemical markers.Entities:
Keywords: Actin; Actin dynamics; Chromobody; Golgi body; Nanobody
Year: 2014 PMID: 24872838 PMCID: PMC4036722 DOI: 10.1186/1746-4811-10-12
Source DB: PubMed Journal: Plant Methods ISSN: 1746-4811 Impact factor: 4.993
Figure 1Transient expression of the actin-chromobody. Lane 1) Transient expression of the actin-chromobody (Actin-Cb) construct with a C-terminal YFP-fusion in Nicotiana tabacum leaves (A); co-expression with the endoplasmic reticulum marker HDEL fused to GFP is shown (B, C). Lane 2) Transient expression of the actin-chromobody (actin-Cb) construct with an N-terminal YFP-fusion in Nicotiana tabacum leaves at different Agrobacterium concentrations: OD600 = 0.1 (A), OD600 = 0.0.5 (B), OD600 = 0.01 (C). Lane 3) Depolymerisation of actin cytoskeleton (labelled by the actin-chromobody) after 15 in (A), 30 min (B) and (45 min (C) treatment with 25 μM latrunculin B (LatB). Lane 4) Repolymerisation of the actin cytoskeleton by washing out the LatB after 30 min (A), 45 min (B) and 60 min (C), respectively.
Figure 2Golgi movement and actin cytoskeleton dynamics. A) Transient co-expression of the actin-chromobody (YFP-actin-Cb in yellow) construct with the Golgi marker ST-GFP (green dots); B) co-expression of Lifeact GFP (green lines) with ST-GFP (green dots). Scale bars = 5 μm. Cumulative Distribution Frequency (CDF) plots of velocity (C) and displacement rate (D) of N. tabacum transiently expressing only ST-GFP (blue line), both ST-GFP and YFP-actin-Cb (yellow line) or ST-GFP and Lifeact-GFP (green line), respectively. Curves marked with shapes (*, ♦) indicate a statistically significant difference from the control ST-GFP of p < 0.05. E) Velocity, displacement rate and meandering index values calculated with Volocity software for N. tabacum transiently expressing ST-GFP (blue line), both ST-GFP and YFP-actin-Cb (yellow line) or ST-GFP and Lifeact-GFP (green line), respectively. Mean values are expressed as a percentage of the control (ST-GFP). Symbols (*, ♦, ▲) indicate that the means are significantly different from the control at p < 0.05. F) Schematic representation of the path and movement pattern of Golgi bodies. When ST-GFP is coexpressed with Lifeact-GFP, Golgi bodies move same linear distance as the control but have a less salutatory path. The coexpression of the antibody determines Golgi bodies moving shorter linear distance and slightly more salutatory.