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1.
J Cell Sci ; 132(20)2019 10 21.
Artigo em Inglês | MEDLINE | ID: mdl-31636158

RESUMO

Adaptor protein (AP) complexes are heterotetramers that select cargo for inclusion into transport vesicles. Five AP complexes (AP-1 to AP-5) have been described, each with a distinct localisation and function. Furthermore, patients with a range of disorders, particularly involving the nervous system, have now been identified with mutations in each of the AP complexes. In many cases this has been correlated with aberrantly localised membrane proteins. In this Cell Science at a Glance article and the accompanying poster, we summarize what is known about the five AP complexes and discuss how this helps to explain the clinical features of the different genetic disorders.


Assuntos
Proteínas Adaptadoras de Transporte Vesicular , Doenças Genéticas Inatas , Proteínas Adaptadoras de Transporte Vesicular/genética , Proteínas Adaptadoras de Transporte Vesicular/metabolismo , Animais , Doenças Genéticas Inatas/genética , Doenças Genéticas Inatas/metabolismo , Humanos
2.
Proc Natl Acad Sci U S A ; 114(52): 13738-13743, 2017 12 26.
Artigo em Inglês | MEDLINE | ID: mdl-29229862

RESUMO

The microtubule motor kinesin-1 interacts via its cargo-binding domain with both microtubules and organelles, and hence plays an important role in controlling organelle transport and microtubule dynamics. In the absence of cargo, kinesin-1 is found in an autoinhibited conformation. The molecular basis of how cargo engagement affects the balance between kinesin-1's active and inactive conformations and roles in microtubule dynamics and organelle transport is not well understood. Here we describe the discovery of kinesore, a small molecule that in vitro inhibits kinesin-1 interactions with short linear peptide motifs found in organelle-specific cargo adaptors, yet activates kinesin-1's function of controlling microtubule dynamics in cells, demonstrating that these functions are mechanistically coupled. We establish a proof-of-concept that a microtubule motor-cargo interface and associated autoregulatory mechanism can be manipulated using a small molecule, and define a target for the modulation of microtubule dynamics.


Assuntos
Ativadores de Enzimas , Cinesinas , Microtúbulos , Motivos de Aminoácidos , Ativadores de Enzimas/química , Ativadores de Enzimas/farmacologia , Células HeLa , Humanos , Cinesinas/química , Cinesinas/genética , Cinesinas/metabolismo , Microtúbulos/química , Microtúbulos/genética , Microtúbulos/metabolismo
3.
J Cell Sci ; 130(9): 1637-1651, 2017 05 01.
Artigo em Inglês | MEDLINE | ID: mdl-28302907

RESUMO

The molecular interplay between cargo recognition and regulation of the activity of the kinesin-1 microtubule motor is not well understood. Using the lysosome adaptor SKIP (also known as PLEKHM2) as model cargo, we show that the kinesin heavy chains (KHCs), in addition to the kinesin light chains (KLCs), can recognize tryptophan-acidic-binding determinants on the cargo when presented in the context of an extended KHC-interacting domain. Mutational separation of KHC and KLC binding shows that both interactions are important for SKIP-kinesin-1 interaction in vitro and that KHC binding is important for lysosome transport in vivo However, in the absence of KLCs, SKIP can only bind to KHC when autoinhibition is relieved, suggesting that the KLCs gate access to the KHCs. We propose a model whereby tryptophan-acidic cargo is first recognized by KLCs, resulting in destabilization of KHC autoinhibition. This primary event then makes accessible a second SKIP-binding site on the KHC C-terminal tail that is adjacent to the autoinhibitory IAK region. Thus, cargo recognition and concurrent activation of kinesin-1 proceed in hierarchical stepwise fashion driven by a dynamic network of inter- and intra-molecular interactions.


Assuntos
Proteínas Adaptadoras de Transdução de Sinal/metabolismo , Cinesinas/metabolismo , Lisossomos/metabolismo , Proteínas Adaptadoras de Transdução de Sinal/química , Motivos de Aminoácidos , Sequência de Aminoácidos , Animais , Sítios de Ligação , Proteínas de Ligação ao Cálcio/metabolismo , Células HeLa , Humanos , Mutação/genética , Ligação Proteica , Domínios Proteicos , Ratos
4.
Proc Natl Acad Sci U S A ; 113(9): 2418-23, 2016 Mar 01.
Artigo em Inglês | MEDLINE | ID: mdl-26884162

RESUMO

The light chains (KLCs) of the microtubule motor kinesin-1 bind cargoes and regulate its activity. Through their tetratricopeptide repeat domain (KLC(TPR)), they can recognize short linear peptide motifs found in many cargo proteins characterized by a central tryptophan flanked by aspartic/glutamic acid residues (W-acidic). Using a fluorescence resonance energy transfer biosensor in combination with X-ray crystallographic, biochemical, and biophysical approaches, we describe how an intramolecular interaction between the KLC2(TPR) domain and a conserved peptide motif within an unstructured region of the molecule, partly occludes the W-acidic binding site on the TPR domain. Cargo binding displaces this interaction, effecting a global conformational change in KLCs resulting in a more extended conformation. Thus, like the motor-bearing kinesin heavy chains, KLCs exist in a dynamic conformational state that is regulated by self-interaction and cargo binding. We propose a model by which, via this molecular switch, W-acidic cargo binding regulates the activity of the holoenzyme.


Assuntos
Cinesinas/antagonistas & inibidores , Sequência de Aminoácidos , Humanos , Cinesinas/química , Dados de Sequência Molecular , Homologia de Sequência de Aminoácidos
5.
EMBO Rep ; 17(6): 823-41, 2016 06.
Artigo em Inglês | MEDLINE | ID: mdl-27113757

RESUMO

The spatial distribution of lysosomes is important for their function and is, in part, controlled by cellular nutrient status. Here, we show that the lysosome associated Birt-Hoge-Dubé (BHD) syndrome renal tumour suppressor folliculin (FLCN) regulates this process. FLCN promotes the peri-nuclear clustering of lysosomes following serum and amino acid withdrawal and is supported by the predominantly Golgi-associated small GTPase Rab34. Rab34-positive peri-nuclear membranes contact lysosomes and cause a reduction in lysosome motility and knockdown of FLCN inhibits Rab34-induced peri-nuclear lysosome clustering. FLCN interacts directly via its C-terminal DENN domain with the Rab34 effector RILP Using purified recombinant proteins, we show that the FLCN-DENN domain does not act as a GEF for Rab34, but rather, loads active Rab34 onto RILP We propose a model whereby starvation-induced FLCN association with lysosomes drives the formation of contact sites between lysosomes and Rab34-positive peri-nuclear membranes that restrict lysosome motility and thus promote their retention in this region of the cell.


Assuntos
Proteínas Adaptadoras de Transdução de Sinal/metabolismo , Estrona/farmacologia , Proteínas rab de Ligação ao GTP/metabolismo , Proteínas de Transporte/genética , Proteínas de Transporte/metabolismo , Linhagem Celular , Expressão Gênica , Complexo de Golgi/metabolismo , Humanos , Membranas Intracelulares/metabolismo , Lisossomos/metabolismo , Proteínas Nucleares , Ligação Proteica/efeitos dos fármacos , Transporte Proteico , Proteínas Proto-Oncogênicas/metabolismo , Proteínas Recombinantes , Transdução de Sinais , Proteínas Supressoras de Tumor/metabolismo
6.
J Cell Biol ; 223(7)2024 Jul 01.
Artigo em Inglês | MEDLINE | ID: mdl-38578286

RESUMO

The AP-1 adaptor complex is found in all eukaryotes, but it has been implicated in different pathways in different organisms. To look directly at AP-1 function, we generated stably transduced HeLa cells coexpressing tagged AP-1 and various tagged membrane proteins. Live cell imaging showed that AP-1 is recruited onto tubular carriers trafficking from the Golgi apparatus to the plasma membrane, as well as onto transferrin-containing early/recycling endosomes. Analysis of single AP-1 vesicles showed that they are a heterogeneous population, which starts to sequester cargo 30 min after exit from the ER. Vesicle capture showed that AP-1 vesicles contain transmembrane proteins found at the TGN and early/recycling endosomes, as well as lysosomal hydrolases, but very little of the anterograde adaptor GGA2. Together, our results support a model in which AP-1 retrieves proteins from post-Golgi compartments back to the TGN, analogous to COPI's role in the early secretory pathway. We propose that this is the function of AP-1 in all eukaryotes.


Assuntos
Complexo de Golgi , Proteínas de Membrana , Transporte Proteico , Fator de Transcrição AP-1 , Humanos , Proteínas Adaptadoras de Transporte Vesicular/metabolismo , Membrana Celular/metabolismo , Endossomos/genética , Endossomos/metabolismo , Complexo de Golgi/genética , Complexo de Golgi/metabolismo , Células HeLa , Proteínas de Membrana/metabolismo , Rede trans-Golgi/metabolismo , Fator de Transcrição AP-1/genética , Fator de Transcrição AP-1/metabolismo
7.
Neuron ; 90(5): 1000-15, 2016 06 01.
Artigo em Inglês | MEDLINE | ID: mdl-27210554

RESUMO

Cytoplasmic dynein, the major motor driving retrograde axonal transport, must be actively localized to axon terminals. This localization is critical as dynein powers essential retrograde trafficking events required for neuronal survival, such as neurotrophic signaling. Here, we demonstrate that the outward transport of dynein from soma to axon terminal is driven by direct interactions with the anterograde motor kinesin-1. In developing neurons, we find that dynein dynamically cycles between neurites, following kinesin-1 and accumulating in the nascent axon coincident with axon specification. In established axons, dynein is constantly transported down the axon at slow axonal transport speeds; inhibition of the kinesin-1-dynein interaction effectively blocks this process. In vitro and live-imaging assays to investigate the underlying mechanism lead us to propose a new model for the slow axonal transport of cytosolic cargos, based on short-lived direct interactions of cargo with a highly processive anterograde motor. VIDEO ABSTRACT.


Assuntos
Transporte Axonal , Dineínas do Citoplasma/metabolismo , Dineínas/metabolismo , Cinesinas/metabolismo , Animais , Células Cultivadas , Dineínas/genética , Técnicas de Introdução de Genes , Hipocampo/crescimento & desenvolvimento , Hipocampo/metabolismo , Camundongos , Neuritos/metabolismo
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