Titre : Conformation des protéines

Conformation des protéines : Questions médicales fréquentes

Termes MeSH sélectionnés :

Time and Motion Studies

Questions fréquentes et termes MeSH associés

Diagnostic 5

#1

Comment diagnostiquer une anomalie de conformation protéique ?

Des techniques comme la spectroscopie RMN et la cristallographie aux rayons X sont utilisées.
Protéines Spectroscopie Cristallographie
#2

Quels tests sont utilisés pour évaluer la conformation des protéines ?

Les tests incluent la chromatographie et l'électrophorèse sur gel.
Électrophorèse Chromatographie Protéines
#3

Quels marqueurs biologiques indiquent des problèmes de conformation ?

Des biomarqueurs comme les protéines mal repliées peuvent être détectés dans le sang.
Biomarqueurs Protéines Maladies protéiques
#4

Peut-on utiliser l'imagerie pour diagnostiquer des anomalies protéiques ?

Oui, l'imagerie par résonance magnétique peut aider à visualiser des anomalies.
Imagerie par résonance magnétique Protéines Diagnostic
#5

Quels symptômes cliniques peuvent indiquer une anomalie de conformation ?

Des symptômes comme la fatigue, la douleur articulaire ou des troubles neurologiques peuvent survenir.
Symptômes Protéines Maladies

Symptômes 5

#1

Quels symptômes sont associés aux maladies de conformation protéique ?

Les symptômes varient, incluant troubles neurologiques, douleurs et fatigue.
Symptômes Maladies protéiques Troubles neurologiques
#2

Comment les anomalies de conformation affectent-elles le corps ?

Elles peuvent entraîner des dysfonctionnements cellulaires et des maladies dégénératives.
Dysfonctionnement cellulaire Maladies dégénératives Protéines
#3

Les troubles cognitifs peuvent-ils être liés à des anomalies protéiques ?

Oui, certaines maladies comme Alzheimer sont liées à des protéines mal repliées.
Alzheimer Protéines Troubles cognitifs
#4

Quels signes cliniques indiquent une maladie de prion ?

Des signes incluent des troubles neurologiques rapides et des changements de comportement.
Maladie de prion Troubles neurologiques Comportement
#5

Les douleurs musculaires peuvent-elles être causées par des anomalies protéiques ?

Oui, des maladies comme la myopathie peuvent résulter de protéines mal conformées.
Myopathie Douleurs musculaires Protéines

Prévention 5

#1

Comment prévenir les maladies liées à la conformation des protéines ?

Une alimentation équilibrée, l'exercice et l'évitement de toxines peuvent aider.
Prévention Alimentation Exercice
#2

Les tests génétiques peuvent-ils aider à prévenir des maladies protéiques ?

Oui, ils permettent d'identifier les prédispositions génétiques aux maladies protéiques.
Tests génétiques Prédispositions Maladies protéiques
#3

L'éducation sur les maladies protéiques est-elle importante ?

Oui, elle aide à reconnaître les symptômes précoces et à chercher un traitement.
Éducation Symptômes Traitement
#4

Les vaccinations peuvent-elles prévenir des maladies liées aux protéines ?

Certaines vaccinations peuvent réduire le risque d'infections qui affectent les protéines.
Vaccinations Infections Protéines
#5

Le stress peut-il influencer la conformation des protéines ?

Oui, le stress oxydatif peut perturber le repliement des protéines et causer des maladies.
Stress oxydatif Protéines Maladies

Traitements 5

#1

Quels traitements existent pour les maladies liées à la conformation protéique ?

Les traitements incluent des thérapies géniques, des médicaments et des approches symptomatiques.
Thérapie génique Médicaments Maladies protéiques
#2

Peut-on corriger la conformation des protéines par des médicaments ?

Oui, certains médicaments peuvent stabiliser ou corriger le repliement des protéines.
Médicaments Protéines Repliement
#3

Les thérapies biologiques sont-elles efficaces contre les anomalies protéiques ?

Oui, elles peuvent cibler des protéines spécifiques et améliorer la fonction cellulaire.
Thérapies biologiques Protéines Fonction cellulaire
#4

Quels rôles jouent les chaperonnes dans le traitement des maladies protéiques ?

Les chaperonnes aident à replier correctement les protéines, réduisant les agrégats.
Chaperonnes Protéines Agrégats
#5

Les approches diététiques peuvent-elles influencer la conformation des protéines ?

Oui, une alimentation riche en antioxydants peut aider à maintenir la santé protéique.
Alimentation Antioxydants Protéines

Complications 5

#1

Quelles complications peuvent survenir avec des anomalies protéiques ?

Des complications incluent des maladies neurodégénératives et des troubles métaboliques.
Complications Maladies neurodégénératives Troubles métaboliques
#2

Les maladies de prion entraînent-elles des complications graves ?

Oui, elles peuvent causer des démences rapides et des troubles neurologiques sévères.
Maladies de prion Démences Troubles neurologiques
#3

Comment les anomalies protéiques affectent-elles le système immunitaire ?

Elles peuvent altérer la réponse immunitaire, rendant l'organisme plus vulnérable.
Système immunitaire Anomalies protéiques Vulnérabilité
#4

Les complications cardiovasculaires sont-elles liées à des anomalies protéiques ?

Oui, certaines protéines mal conformées peuvent contribuer à des maladies cardiovasculaires.
Complications cardiovasculaires Protéines Maladies
#5

Les troubles métaboliques peuvent-ils résulter d'anomalies protéiques ?

Oui, des protéines mal repliées peuvent perturber le métabolisme et causer des troubles.
Troubles métaboliques Protéines Perturbation

Facteurs de risque 5

#1

Quels facteurs de risque sont associés aux maladies protéiques ?

Les facteurs incluent des prédispositions génétiques, l'âge et l'exposition à des toxines.
Facteurs de risque Prédispositions génétiques Toxines
#2

Le vieillissement est-il un facteur de risque pour les anomalies protéiques ?

Oui, le vieillissement peut affecter le repliement et la fonction des protéines.
Vieillissement Protéines Anomalies
#3

L'alimentation influence-t-elle le risque de maladies protéiques ?

Oui, une alimentation pauvre en nutriments essentiels peut augmenter le risque.
Alimentation Nutriments Risque
#4

Le stress environnemental peut-il affecter la conformation des protéines ?

Oui, des facteurs comme la pollution peuvent perturber le repliement des protéines.
Stress environnemental Pollution Protéines
#5

Les infections virales sont-elles un facteur de risque pour les maladies protéiques ?

Oui, certaines infections peuvent induire des modifications dans la conformation des protéines.
Infections virales Maladies protéiques Protéines
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gel." } }, { "@type": "Question", "name": "Quels marqueurs biologiques indiquent des problèmes de conformation ?", "position": 3, "acceptedAnswer": { "@type": "Answer", "text": "Des biomarqueurs comme les protéines mal repliées peuvent être détectés dans le sang." } }, { "@type": "Question", "name": "Peut-on utiliser l'imagerie pour diagnostiquer des anomalies protéiques ?", "position": 4, "acceptedAnswer": { "@type": "Answer", "text": "Oui, l'imagerie par résonance magnétique peut aider à visualiser des anomalies." } }, { "@type": "Question", "name": "Quels symptômes cliniques peuvent indiquer une anomalie de conformation ?", "position": 5, "acceptedAnswer": { "@type": "Answer", "text": "Des symptômes comme la fatigue, la douleur articulaire ou des troubles neurologiques peuvent survenir." } }, { "@type": "Question", "name": "Quels symptômes sont associés aux maladies de conformation protéique ?", "position": 6, "acceptedAnswer": { "@type": "Answer", "text": "Les symptômes varient, 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"acceptedAnswer": { "@type": "Answer", "text": "Certaines vaccinations peuvent réduire le risque d'infections qui affectent les protéines." } }, { "@type": "Question", "name": "Le stress peut-il influencer la conformation des protéines ?", "position": 15, "acceptedAnswer": { "@type": "Answer", "text": "Oui, le stress oxydatif peut perturber le repliement des protéines et causer des maladies." } }, { "@type": "Question", "name": "Quels traitements existent pour les maladies liées à la conformation protéique ?", "position": 16, "acceptedAnswer": { "@type": "Answer", "text": "Les traitements incluent des thérapies géniques, des médicaments et des approches symptomatiques." } }, { "@type": "Question", "name": "Peut-on corriger la conformation des protéines par des médicaments ?", "position": 17, "acceptedAnswer": { "@type": "Answer", "text": "Oui, certains médicaments peuvent stabiliser ou corriger le repliement des protéines." } }, { "@type": "Question", "name": "Les thérapies biologiques sont-elles efficaces contre les anomalies protéiques ?", "position": 18, "acceptedAnswer": { "@type": "Answer", "text": "Oui, elles peuvent cibler des protéines spécifiques et améliorer la fonction cellulaire." } }, { "@type": "Question", "name": "Quels rôles jouent les chaperonnes dans le traitement des maladies protéiques ?", "position": 19, "acceptedAnswer": { "@type": "Answer", "text": "Les chaperonnes aident à replier correctement les protéines, réduisant les agrégats." } }, { "@type": "Question", "name": "Les approches diététiques peuvent-elles influencer la conformation des protéines ?", "position": 20, "acceptedAnswer": { "@type": "Answer", "text": "Oui, une alimentation riche en antioxydants peut aider à maintenir la santé protéique." } }, { "@type": "Question", "name": "Quelles complications peuvent survenir avec des anomalies protéiques ?", "position": 21, "acceptedAnswer": { "@type": "Answer", "text": "Des complications incluent des maladies neurodégénératives et des troubles métaboliques." } }, { "@type": "Question", "name": "Les maladies de prion entraînent-elles des complications graves ?", "position": 22, "acceptedAnswer": { "@type": "Answer", "text": "Oui, elles peuvent causer des démences rapides et des troubles neurologiques sévères." } }, { "@type": "Question", "name": "Comment les anomalies protéiques affectent-elles le système immunitaire ?", "position": 23, "acceptedAnswer": { "@type": "Answer", "text": "Elles peuvent altérer la réponse immunitaire, rendant l'organisme plus vulnérable." } }, { "@type": "Question", "name": "Les complications cardiovasculaires sont-elles liées à des anomalies protéiques ?", "position": 24, "acceptedAnswer": { "@type": "Answer", "text": "Oui, certaines protéines mal conformées peuvent contribuer à des maladies cardiovasculaires." } }, { "@type": "Question", "name": "Les troubles métaboliques peuvent-ils résulter d'anomalies protéiques ?", "position": 25, "acceptedAnswer": { "@type": "Answer", "text": "Oui, des protéines mal repliées peuvent perturber le métabolisme et causer des troubles." } }, { "@type": "Question", "name": "Quels facteurs de risque sont associés aux maladies protéiques ?", "position": 26, "acceptedAnswer": { "@type": "Answer", "text": "Les facteurs incluent des prédispositions génétiques, l'âge et l'exposition à des toxines." } }, { "@type": "Question", "name": "Le vieillissement est-il un facteur de risque pour les anomalies protéiques ?", "position": 27, "acceptedAnswer": { "@type": "Answer", "text": "Oui, le vieillissement peut affecter le repliement et la fonction des protéines." } }, { "@type": "Question", "name": "L'alimentation influence-t-elle le risque de maladies protéiques ?", "position": 28, "acceptedAnswer": { "@type": "Answer", "text": "Oui, une alimentation pauvre en nutriments essentiels peut augmenter le risque." } }, { "@type": "Question", "name": "Le stress environnemental peut-il affecter la conformation des protéines ?", "position": 29, "acceptedAnswer": { "@type": "Answer", "text": "Oui, des facteurs comme la pollution peuvent perturber le repliement des protéines." } }, { "@type": "Question", "name": "Les infections virales sont-elles un facteur de risque pour les maladies protéiques ?", "position": 30, "acceptedAnswer": { "@type": "Answer", "text": "Oui, certaines infections peuvent induire des modifications dans la conformation des protéines." } } ] } ] }
Dr Olivier Menir

Contenu validé par Dr Olivier Menir

Expert en Médecine, Optimisation des Parcours de Soins et Révision Médicale


Validation scientifique effectuée le 25/02/2025

Contenu vérifié selon les dernières recommandations médicales

Sous-catégories

60 au total
└─

Éléments structuraux des protéines

Protein Structural Elements D000072416 - G02.111.570.820.709.275
└─

Structure quaternaire des protéines

Protein Structure, Quaternary D020836 - G02.111.570.820.709.550
└─

Structure secondaire des protéines

Protein Structure, Secondary D017433 - G02.111.570.820.709.600
└─

Structure tertiaire des protéines

Protein Structure, Tertiary D017434 - G02.111.570.820.709.610
└─└─└─

Motifs AT-hook

AT-Hook Motifs D024761 - G02.111.570.820.709.275.500.050
└─└─└─

Motifs de knottins

Cystine Knot Motifs D047168 - G02.111.570.820.709.275.500.127
└─└─└─

Motifs F-box

F-Box Motifs D044782 - G02.111.570.820.709.275.500.205
└─└─└─

Motifs à hélice-boucle-hélice

Helix-Loop-Helix Motifs D018257 - G02.111.570.820.709.275.500.360
└─└─└─

Motif d'activation de l'immunorécepteur dépendant de la tyrosine

Immunoreceptor Tyrosine-Based Activation Motif D061625 - G02.111.570.820.709.275.500.440
└─└─└─

Motif d'inhibition de l'immunorécepteur dépendant de la tyrosine

Immunoreceptor Tyrosine-Based Inhibition Motif D061626 - G02.111.570.820.709.275.500.480
└─└─└─

Motifs kazal

Kazal Motifs D000074161 - G02.111.570.820.709.275.500.490
└─└─└─

Glissières à leucine

Leucine Zippers D016350 - G02.111.570.820.709.275.500.520
└─└─└─

Motif de liaison au poly-ADP-ribose

Poly-ADP-Ribose Binding Motif D000075225 - G02.111.570.820.709.275.500.695
└─└─└─

Motifs de liaison à l'ARN

RNA-Binding Motifs D000071376 - G02.111.570.820.709.275.500.869
└─└─└─

Domaine AAA

AAA Domain D000074182 - G02.111.570.820.709.275.500.913
└─└─└─

Doigts de zinc

Zinc Fingers D016335 - G02.111.570.820.709.275.500.985
└─└─└─

Domaines C2

C2 Domains D000070538 - G02.111.570.820.709.275.750.125
└─└─└─

Modules de liaison au carbohydrate

Carbohydrate Binding Modules D000094342 - G02.111.570.820.709.275.750.157
└─└─└─

Domaine catalytique

Catalytic Domain D020134 - G02.111.570.820.709.275.750.188
└─└─└─

Domaine discoïdine

Discoidin Domain D000070822 - G02.111.570.820.709.275.750.219
└─└─└─

Domaines à boîtes HMG

HMG-Box Domains D024742 - G02.111.570.820.709.275.750.235
└─└─└─

Domaines immunoglobuline

Immunoglobulin Domains D000070557 - G02.111.570.820.709.275.750.250
└─└─└─

Kringles

Kringles D018082 - G02.111.570.820.709.275.750.375
└─└─└─

Domaine de liaison aux méthyl-CpG

Methyl CpG Binding Domain D000070593 - G02.111.570.820.709.275.750.438
└─└─└─

Domaines homologues de la pleckstrine

Pleckstrin Homology Domains D000070539 - G02.111.570.820.709.275.750.469
└─└─└─

Domaines PR-SET

PR-SET Domains D000074463 - G02.111.570.820.709.275.750.477
└─└─└─

Domaines de protéine riches en proline

Proline-Rich Protein Domains D055232 - G02.111.570.820.709.275.750.485
└─└─└─

Motifs et domaines d'intéraction protéique

Protein Interaction Domains and Motifs D054730 - G02.111.570.820.709.275.750.500
└─└─└─

Répétition ankyrine

Ankyrin Repeat D017089 - G02.111.570.820.709.275.875.030
└─└─└─

Répétition kelch

Kelch Repeat D000071776 - G02.111.570.820.709.275.875.273
└─└─└─

Répétition tétratricopeptide

Tetratricopeptide Repeat D000074436 - G02.111.570.820.709.275.875.394
└─└─└─

Répétitions WD40

WD40 Repeats D000071678 - G02.111.570.820.709.275.875.515
└─└─└─└─

Motifs EF Hands

EF Hand Motifs D020832 - G02.111.570.820.709.275.500.360.240
└─└─└─└─

Motifs à hélice-tour-hélice

Helix-Turn-Helix Motifs D019077 - G02.111.570.820.709.275.500.360.360
└─└─└─└─

Motif de liaison à l'ARN double brin

Double-Stranded RNA Binding Motif D000071241 - G02.111.570.820.709.275.500.869.250
└─└─└─└─

Motif de reconnaissance de l'ARN

RNA Recognition Motif D000071377 - G02.111.570.820.709.275.500.869.500
└─└─└─└─

Doigts de zinc CYS2-HIS2

CYS2-HIS2 Zinc Fingers D000070580 - G02.111.570.820.709.275.500.985.250
└─└─└─└─

Doigts de zinc PHD

PHD Zinc Fingers D000075925 - G02.111.570.820.709.275.500.985.438
└─└─└─└─

Domaine fibronectine de type III

Fibronectin Type III Domain D000071238 - G02.111.570.820.709.275.750.250.500
└─└─└─└─

Domaine B30.2-SPRY

B30.2-SPRY Domain D000071197 - G02.111.570.820.709.275.750.500.290
└─└─└─└─

Domaine BTB-POZ

BTB-POZ Domain D000071757 - G02.111.570.820.709.275.750.500.343
└─└─└─└─

Superfamille des domaines de mort

Death Domain Superfamily D000071458 - G02.111.570.820.709.275.750.500.395
└─└─└─└─

Domaines FERM

FERM Domains D000075926 - G02.111.570.820.709.275.750.500.422
└─└─└─└─

Domaines MYND

MYND Domains D000074608 - G02.111.570.820.709.275.750.500.474
└─└─└─└─

Domaines PDZ

PDZ Domains D054731 - G02.111.570.820.709.275.750.500.500
└─└─└─└─

Domaines à doigts de zinc de type RING

RING Finger Domains D054829 - G02.111.570.820.709.275.750.500.625
└─└─└─└─

Domaine d'homologie SRC

src Homology Domains D018909 - G02.111.570.820.709.275.750.500.750
└─└─└─└─

Motif stérile alpha

Sterile Alpha Motif D000071682 - G02.111.570.820.709.275.750.500.813
└─└─└─└─

Domaine Tudor

Tudor Domain D000071856 - G02.111.570.820.709.275.750.500.844
└─└─└─└─

Domaines WW

WW Domains D000074585 - G02.111.570.820.709.275.750.500.937
└─└─└─└─└─

Motif ETS

ETS Motif D000071419 - G02.111.570.820.709.275.500.360.360.500
└─└─└─└─└─

Domaine d'activation et de recrutement des caspases

Caspase Activation and Recruitment Domain D000071476 - G02.111.570.820.709.275.750.500.395.250
└─└─└─└─└─

Domaine de mort

Death Domain D000071459 - G02.111.570.820.709.275.750.500.395.500
└─└─└─└─└─

Domaine effecteur de mort

Death Effector Domain D000071461 - G02.111.570.820.709.275.750.500.395.750
└─└─└─└─└─

Domaine pyrine

Pyrin Domain D000071196 - G02.111.570.820.709.275.750.500.395.875
└─└─

Séquences répétées d'acides aminés

Repetitive Sequences, Amino Acid D020449 - G02.111.570.820.709.275.875
└─└─

Structure en hélice alpha

Protein Conformation, alpha-Helical D000072756 - G02.111.570.820.709.600.020
└─└─

Motifs d'acides aminés

Amino Acid Motifs D020816 - G02.111.570.820.709.600.500
└─└─

Structure en brin bêta

Protein Conformation, beta-Strand D000072757 - G02.111.570.820.709.600.750
└─└─

Domaines protéiques

Protein Domains D000072417 - G02.111.570.820.709.610.500

Auteurs principaux

Maria Silvina Fornasari

2 publications dans cette catégorie

Affiliations :
  • Departamento de Ciencia y Tecnología, Universidad Nacional de Quilmes, CONICET, Bernal, Argentina.
Publications dans "Conformation des protéines" :

Diego Javier Zea

2 publications dans cette catégorie

Affiliations :
  • Structural Bioinformatics Unit, Fundación Instituto Leloir, CONICET, Buenos Aires, Argentina.
Publications dans "Conformation des protéines" :

Gustavo Parisi

2 publications dans cette catégorie

Affiliations :
  • Departamento de Ciencia y Tecnología, Universidad Nacional de Quilmes, CONICET, Bernal, Argentina. gusparisi@gmail.com.
Publications dans "Conformation des protéines" :

Attila Gursoy

2 publications dans cette catégorie

Affiliations :
  • Computer Science and Engineering Department, Koc University, Istanbul, Turkey. agursoy@ku.edu.tr.

Ozlem Keskin

2 publications dans cette catégorie

Affiliations :
  • Chemical and Biological Engineering Department, Koc University, Istanbul, Turkey.

Ming Dong

2 publications dans cette catégorie

Affiliations :
  • Department of Chemistry, North Carolina Agricultural and Technical State University, Greensboro, NC, USA.
Publications dans "Conformation des protéines" :

David Baker

2 publications dans cette catégorie

Affiliations :
  • Department of Biochemistry, University of Washington, Seattle, WA 98105; dabaker@uw.edu so@fas.harvard.edu.
  • Institute for Protein Design, University of Washington, Seattle, WA 98105.
  • Howard Hughes Medical Institute, University of Washington, Seattle, WA 98105.
Publications dans "Conformation des protéines" :

Hao Tian

2 publications dans cette catégorie

Affiliations :
  • Center for Research Computing, Center for Drug Discovery, Design, and Delivery (CD4), Department of Chemistry, Southern Methodist University, Dallas, TX, United States.
Publications dans "Conformation des protéines" :

Sian Xiao

2 publications dans cette catégorie

Affiliations :
  • Center for Research Computing, Center for Drug Discovery, Design, and Delivery (CD4), Department of Chemistry, Southern Methodist University, Dallas, TX, United States.
Publications dans "Conformation des protéines" :

Peng Tao

2 publications dans cette catégorie

Affiliations :
  • Center for Research Computing, Center for Drug Discovery, Design, and Delivery (CD4), Department of Chemistry, Southern Methodist University, Dallas, TX, United States.
Publications dans "Conformation des protéines" :

Alexander Miguel Monzon

1 publication dans cette catégorie

Affiliations :
  • Departamento de Ciencia y Tecnología, Universidad Nacional de Quilmes, CONICET, Bernal, Argentina.
Publications dans "Conformation des protéines" :

H A Scheraga

1 publication dans cette catégorie

Affiliations :
  • Department of Chemistry and Chemical Biology, Baker Laboratory, Cornell University, Ithaca, New York, USA.
Publications dans "Conformation des protéines" :

S Rackovsky

1 publication dans cette catégorie

Affiliations :
  • Department of Chemistry and Chemical Biology, Baker Laboratory, Cornell University, Ithaca, New York, USA.
  • Department of Biochemistry and Biophysics, University of Rochester School of Medicine and Dentistry, Rochester, New York, USA.
Publications dans "Conformation des protéines" :

Avner Schlessinger

1 publication dans cette catégorie

Affiliations :
  • Department of Pharmacological Sciences, Icahn School of Medicine at Mount Sinai, New York, United States.
Publications dans "Conformation des protéines" :

Massimiliano Bonomi

1 publication dans cette catégorie

Affiliations :
  • Department of Structural Biology and Chemistry, Institut Pasteur, Université Paris Cité, Paris, France.
Publications dans "Conformation des protéines" :

Michael Assfalg

1 publication dans cette catégorie

Affiliations :
  • Department of Biotechnology, University of Verona, 37134 Verona, Italy.
Publications dans "Conformation des protéines" :

Diego S Vazquez

1 publication dans cette catégorie

Affiliations :
  • Departamento de Ciencia y Tecnología, Universidad Nacional de Quilmes and Grupo de Biología Estructural y Biotecnología, IMBICE, CONICET, Universidad Nacional de Quilmes, Argentina.
Publications dans "Conformation des protéines" :

Pamela L Toledo

1 publication dans cette catégorie

Affiliations :
  • Departamento de Ciencia y Tecnología, Universidad Nacional de Quilmes and Grupo de Biología Estructural y Biotecnología, IMBICE, CONICET, Universidad Nacional de Quilmes, Argentina.
Publications dans "Conformation des protéines" :

Alejo R Gianotti

1 publication dans cette catégorie

Affiliations :
  • Departamento de Ciencia y Tecnología, Universidad Nacional de Quilmes and Grupo de Biología Estructural y Biotecnología, IMBICE, CONICET, Universidad Nacional de Quilmes, Argentina.
Publications dans "Conformation des protéines" :

Mario R Ermácora

1 publication dans cette catégorie

Affiliations :
  • Departamento de Ciencia y Tecnología, Universidad Nacional de Quilmes and Grupo de Biología Estructural y Biotecnología, IMBICE, CONICET, Universidad Nacional de Quilmes, Argentina.
Publications dans "Conformation des protéines" :

Sources (10000 au total)

Activities of the oral health teams in primary health care: a time-motion study.

Efficient planning of the oral health workforce in Primary Health Care (PHC) is paramount to ensure equitable community access to services. This requires a meticulous examination of the population's n... Calculate the average time parameters for the activities carried out by the oral health team in primary health care.... This is a descriptive observational study using the time-motion method carried out in five Primary Health Care Units in the city of São Paulo, SP, Brazil. Direct and continuous observation of oral hea... A total of 696.05 h of observation were conducted with 12 Dentists, three Oral Health Assistants, and five Oral Health Technicians. The Dentists' main activity was consultation with an average duratio... The study establishes time standards for the activities performed by the dental care team and provides support for the application of workforce planning methods that allow for review and optimization ...

Understanding the workflow of nurses in acute and subacute medical wards: A time and motion study.

The aim of this study was to determine how much time nurses spend on direct and indirect patient care in acute and subacute hospital settings.... Quantifying direct and indirect nursing care provided during inpatient stay is vital to optimise the quality of care and manage resources.... Time and motion cross-sectional observational study and reported the study according to the STROBE guideline.... Nurses working in an acute or subacute medical wards of a single health service participated. Nurses were observed twice for 2 h on the same day with an observer break in between sessions. Real-time t... Twenty-one nurses (acute n = 12, subacute n = 9) were observed during shifts between 7 AM and 9 PM in May-July 2021. A total of 7240 tasks were recorded. Nurses spent a third of their time on direct p... Time spent on tasks was similar regardless of the setting and was consistent with previous research. We found differences in the distribution of tasks throughout the day between settings, which could ...

A time motion study of manual versus artificial intelligence methods for wound assessment.

This time-motion study explored the amount of time clinicians spent on wound assessments in a real-world environment using wound assessment digital application utilizing Artificial Intelligence (AI) v... Clinicians practicing at Valley Wound Center who agreed to join the study were asked to record the time needed to complete wound assessment activities for patients with active wounds referred for a ro... A total of 91 patients with 115 wounds were assessed. The average time to capture and access wound image with the AI digital tool was significantly faster than a standard digital camera with an averag... Using the digital assessment tool saved significant time for clinicians in assessing wounds. It also successfully captured quality wound images at the first attempt....

Impact of school-based malaria intervention on primary school teachers' time in Malawi: evidence from a time and motion study.

School-based health (SBH) programmes that are contingent on primary school teachers are options to increase access to malaria treatment among learners. However, perceptions that provision of healthcar... A time and motion study was conducted in 10 primary schools in rural Malawi. Teachers who had been trained to diagnose and treat uncomplicated malaria were continuously observed in real time during sc... Seventy-four teachers, trained to use LTK, were observed. Their mean age and years of teaching experience were 34.7 and 8.7, respectively. Overall, 739.8 h of teacher observations took place. The aver... School-based health (SBH) programmes are not detrimental to teaching activities. Teachers manage their time to ensure additional time required for SBH services is not at the expense of teaching duties...

Assessing community health workers' time allocation for a cervical cancer screening and treatment intervention in Malawi: a time and motion study.

Community health workers (CHWs) are essential field-based personnel and increasingly used to deliver priority interventions to achieve universal health coverage. Existing literature allude to the pote... A time and motion study was conducted in 7 health facilities in Malawi. Data was collected at baseline between October-July 2019, and 12 months after CCSPT implementation between July and August 2021.... Thirty-seven (n = 37) CHWs were observed. Their mean age and years of experience were 42 and 17, respectively. Overall, CHWs were observed for 323 hours (inter quartile range: 2.8-5.5). Compared with ... Introduction of CCSPT was not very detrimental to pre-existing community services. CHWs managed their time ensuring additional efforts required for CCSPT were not at the expense of essential activitie...

Determinants of received care time among Finnish home care clients and assisted living facility residents: a time-motion study.

Ageing populations and care workforce shortages across Europe are causing challenges for care services for older people. Therefore, it is paramount that limited care resources are allocated optimally,... Cross-sectional observational study design with data from time and motion study, registers, and surveys was used. In total, 1477 home care clients and 1538 residents from assisted living facilities wi... Physical functioning was the strongest predictor of received care time in both care settings. In home care, greater pain, more unstable health, and higher team autonomy were associated with increased ... Physical functioning was the main driver of received care time. Interventions that maintain or improve physical functioning can help restrain the growing need of care resources, although it is importa...

Time-motion analysis of taekwondo matches in the Tokyo 2020 Olympic Games.

The aim of the present study was to determine the time-motion structure of high-level taekwondo matches during the Tokyo 2020 Olympic Games in relation to sex, match outcome, weight category and match... Overall, 7007 actions were recorded during the analysis of 134 performances (67 rounds of 24 matches: four rounds of 16, eight quarterfinals, eight semifinals and four finals) in male and female flywe... The AT/ST ratio was ~1:1.5. Male athletes performed significantly longer (P<0.001) sum PT than female athletes. Flyweight athletes differed significantly from their heavyweight counterparts by having ... The rule changes and the implementation of the electronic score recording system had a major impact on the time-motion structure of combat by generating a considerably higher AT/ST ratio than in the p...

Electronic oral health surveillance system for Egyptian preschoolers using District Health Information System (DHIS2): design description and time motion study.

Early childhood caries (ECC) is a major global health issue affecting millions of children. Mitigating this problem requires up-to-date information from reliable surveillance systems. This enables evi... The DHIS2 Server was configured for the DHIS2 Tracker Android Capture App to allow individual-level data entry. The EOHSS indicators were selected in line with the WHO Action Plan 2030. Two modalities... The pilot team reported positive feedback on the structure of the EOHSS. Workflow adaptations were made to prioritize surveillance tasks by collecting data from caregivers before acquiring clinical da... The DHIS2 provides a feasible solution for developing electronic, oral health surveillance systems. The one-minute difference in data capture time in telemodality compared to face-to-face indicates th...