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AB31390

Anti-ATF-4 antibody

5

(4 리뷰들)

|

(16 제품이 사용된 논문 )

Anti-ATF-4 antibody (ab31390) is a rabbit polyclonal antibody detecting ATF-4 in IHC-P, IHC-Fr, ICC/IF, ELISA. Suitable for Human, Mouse.

- Over 10 publications
- Trusted since 2006

대체 명칭 보기

CREB2, TXREB, ATF4, Cyclic AMP-dependent transcription factor ATF-4, cAMP-dependent transcription factor ATF-4, Activating transcription factor 4, Cyclic AMP-responsive element-binding protein 2, Tax-responsive enhancer element-binding protein 67, CREB-2, cAMP-responsive element-binding protein 2, TaxREB67

1 이미지
Immunohistochemistry (Formalin/PFA-fixed paraffin-embedded sections) - Anti-ATF-4 antibody (AB31390)
  • IHC-P

Unknown

Immunohistochemistry (Formalin/PFA-fixed paraffin-embedded sections) - Anti-ATF-4 antibody (AB31390)

ab31390 at a 1 : 50-1 : 100 dilution staining ATF-4 in human breast carcinoma tissue, using Immunohistochemistry, Paraffin Embedded Tissue.

Left image : Un-treated.

Right image : Antibody pre-incubated with synthesized peptide.

주요 정보

Host species

Rabbit

Clonality

Polyclonal

Isotype

IgG

Carrier free

No

Reacts with

Human, Mouse

Applications

ICC/IF, ELISA, IHC-P, IHC-Fr

applications

Immunogen

Synthetic Peptide within Human ATF4. The exact immunogen used to generate this antibody is proprietary information.

P18848

Specificity

Antibody detects endogenous levels of ATF-4 protein around Serine 245.

Reactivity 정보

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제품 세부 정보

What is this antibody validated in?
Anti-ATF-4 antibody (ab31390) is a rabbit polyclonal antibody and is validated for use in Immunohistochemistry (IHC-P), Immunohistochemistry (IHC-Fr), Immunocytochemistry/immunofluorescence (ICC/IF), ELISA in Human, Mouse samples.

Trusted by the scientific community
Anti-ATF-4 (ab31390) was first used in a scientific publication in 2006 and has been cited over 10 times in peer-reviewed journals.

특성 및 보관 정보

제형
Liquid
Purification 테크닉
Affinity purification Immunogen
보관 버퍼
pH: 7.4 Preservative: 0.02% Sodium azide Constituents: PBS, 50% Glycerol (glycerin, glycerine), 0.87% Sodium chloride
배송 시 보관 조건
Blue Ice
적절한 단기 보관 조건
+4°C
적절한 장기 보관 조건
-20°C
분주 정보
Upon delivery aliquot
보관 정보
Avoid freeze / thaw cycle

추가 정보

This supplementary information is collated from multiple sources and compiled automatically.

Activating Transcription Factor 4 (ATF-4) also known as CREB-2 is a fundamental protein involved in cellular stress responses. It functions mechanically as a transcription factor that regulates gene expression in reaction to stress signals. The molecular weight of ATF-4 is approximately 38 kDa. ATF-4 gets expressed in various tissues including the brain liver and pancreas reflecting its involvement in diverse cellular processes. Scientists widely use techniques like Western blot to detect and study ATF-4 expression patterns due to its reliable measurement of the ATF-4 molecular weight.
Biological function summary

ATF-4 participates in controlling genes linked to amino acid metabolism redox homeostasis and apoptosis. It does not work alone; ATF-4 often forms part of larger complexes interacting with other transcription factors like C/EBP and ATF-3 to exert its effects. These interactions enable it to respond accurately to different types of cellular stress by adjusting the expression of specific genes ensuring that cells can adapt to changing conditions.

Pathways

ATF-4 plays a significant role in the integrated stress response (ISR) and the unfolded protein response (UPR). Through these pathways it collaborates with proteins such as PERK (protein kinase R-like endoplasmic reticulum kinase) and eIF2α. The ISR and UPR help cells cope with stress by modulating protein synthesis and promoting the expression of protective genes. By interacting with these pathways ATF-4 contributes to maintaining cellular homeostasis and protecting cells from damage.

ATF-4 has been linked to conditions such as neurodegenerative diseases and cancer. In neurodegenerative disorders like Alzheimer's disease ATF-4 can regulate genes involved in neuronal survival and apoptosis interacting with proteins like CHOP. In cancer ATF-4 influences tumor cell survival and growth through its role in stress responses. Understanding ATF-4's relationship with diseases highlights its potential as a therapeutic target in the treatment of these complex disorders.

제품 프로토콜

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타겟 정보

Transcription factor that binds the cAMP response element (CRE) (consensus : 5'-GTGACGT[AC][AG]-3') and displays two biological functions, as regulator of metabolic and redox processes under normal cellular conditions, and as master transcription factor during integrated stress response (ISR) (PubMed : 16682973, PubMed : 17684156, PubMed : 31023583, PubMed : 31444471, PubMed : 32132707). Binds to asymmetric CRE's as a heterodimer and to palindromic CRE's as a homodimer (By similarity). Core effector of the ISR, which is required for adaptation to various stress such as endoplasmic reticulum (ER) stress, amino acid starvation, mitochondrial stress or oxidative stress (PubMed : 31023583, PubMed : 32132707). During ISR, ATF4 translation is induced via an alternative ribosome translation re-initiation mechanism in response to EIF2S1/eIF-2-alpha phosphorylation, and stress-induced ATF4 acts as a master transcription factor of stress-responsive genes in order to promote cell recovery (PubMed : 31023583, PubMed : 32132706, PubMed : 32132707). Promotes the transcription of genes linked to amino acid sufficiency and resistance to oxidative stress to protect cells against metabolic consequences of ER oxidation (By similarity). Activates the transcription of NLRP1, possibly in concert with other factors in response to ER stress (PubMed : 26086088). Activates the transcription of asparagine synthetase (ASNS) in response to amino acid deprivation or ER stress (PubMed : 11960987). However, when associated with DDIT3/CHOP, the transcriptional activation of the ASNS gene is inhibited in response to amino acid deprivation (PubMed : 18940792). Together with DDIT3/CHOP, mediates programmed cell death by promoting the expression of genes involved in cellular amino acid metabolic processes, mRNA translation and the terminal unfolded protein response (terminal UPR), a cellular response that elicits programmed cell death when ER stress is prolonged and unresolved (By similarity). Activates the expression of COX7A2L/SCAF1 downstream of the EIF2AK3/PERK-mediated unfolded protein response, thereby promoting formation of respiratory chain supercomplexes and increasing mitochondrial oxidative phosphorylation (PubMed : 31023583). Together with DDIT3/CHOP, activates the transcription of the IRS-regulator TRIB3 and promotes ER stress-induced neuronal cell death by regulating the expression of BBC3/PUMA in response to ER stress (PubMed : 15775988). May cooperate with the UPR transcriptional regulator QRICH1 to regulate ER protein homeostasis which is critical for cell viability in response to ER stress (PubMed : 33384352). In the absence of stress, ATF4 translation is at low levels and it is required for normal metabolic processes such as embryonic lens formation, fetal liver hematopoiesis, bone development and synaptic plasticity (By similarity). Acts as a regulator of osteoblast differentiation in response to phosphorylation by RPS6KA3/RSK2 : phosphorylation in osteoblasts enhances transactivation activity and promotes expression of osteoblast-specific genes and post-transcriptionally regulates the synthesis of Type I collagen, the main constituent of the bone matrix (PubMed : 15109498). Cooperates with FOXO1 in osteoblasts to regulate glucose homeostasis through suppression of beta-cell production and decrease in insulin production (By similarity). Activates transcription of SIRT4 (By similarity). Regulates the circadian expression of the core clock component PER2 and the serotonin transporter SLC6A4 (By similarity). Binds in a circadian time-dependent manner to the cAMP response elements (CRE) in the SLC6A4 and PER2 promoters and periodically activates the transcription of these genes (By similarity). Mainly acts as a transcriptional activator in cellular stress adaptation, but it can also act as a transcriptional repressor : acts as a regulator of synaptic plasticity by repressing transcription, thereby inhibiting induction and maintenance of long-term memory (By similarity). Regulates synaptic functions via interaction with DISC1 in neurons, which inhibits ATF4 transcription factor activity by disrupting ATF4 dimerization and DNA-binding (PubMed : 31444471).. (Microbial infection) Binds to a Tax-responsive enhancer element in the long terminal repeat of HTLV-I.
See full target information ATF4

제품이 사용된 논문 (16)

Recent publications for all applications. Explore the 전체 목록 and refine your search

Cellular & molecular immunology 22:645-660 PubMed40335738

2025

Harnessing nutrient scarcity for enhanced CAR-T-cell potency and safety in solid tumors.

Applications

Unspecified application

Species

Unspecified reactive species

Enzo Manchon,Nell Hirt,Benjamin Versier,Aravindhan Soundiramourty,Ludmila Juricek,Celeste Lebbe,Maxime Battistella,Yves Christen,Jacques Mallet,Dominique Charron,Nabila Jabrane-Ferrat,Che Serguera,Reem Al-Daccak

Science advances 11:eadq1575 PubMed40184463

2025

Atf3 controls transitioning in female mitochondrial cardiomyopathy as identified by spatial and single-cell transcriptomics.

Applications

Unspecified application

Species

Unspecified reactive species

Tasneem Qaqorh,Yusuke Takahashi,Kohei Sameshima,Kentaro Otani,Issei Yazawa,Yuya Nishida,Kohei Tonai,Yoshitaka Fujihara,Mizuki Honda,Shinya Oki,Yasuyuki Ohkawa,David R Thorburn,Ann E Frazier,Atsuhito Takeda,Yoshihiko Ikeda,Heima Sakaguchi,Takuya Watanabe,Norihide Fukushima,Yasumasa Tsukamoto,Naomasa Makita,Osamu Yamaguchi,Kei Murayama,Akira Ohtake,Yasushi Okazaki,Takanari Kimura,Hisakazu Kato,Hijiri Inoue,Ken Matsuoka,Seiji Takashima,Yasunori Shintani

Nature communications 16:2942 PubMed40140376

2025

CREB3 gain of function variants protect against ALS.

Applications

Unspecified application

Species

Unspecified reactive species

Salim Megat,Christine Marques,Marina Hernán-Godoy,Chantal Sellier,Geoffrey Stuart-Lopez,Sylvie Dirrig-Grosch,Charlotte Gorin,Aurore Brunet,Mathieu Fischer,Céline Keime,Pascal Kessler,Marco Antonio Mendoza-Parra,Ramona A J Zwamborn,Jan H Veldink,Sonja W Scholz,Luigi Ferrucci,Albert Ludolph,Bryan Traynor,Adriano Chio,Luc Dupuis,Caroline Rouaux

Nature communications 15:4711 PubMed38830841

2024

Pulmonary maternal immune activation does not cross the placenta but leads to fetal metabolic adaptation.

Applications

Unspecified application

Species

Unspecified reactive species

Signe Schmidt Kjølner Hansen,Robert Krautz,Daria Rago,Jesper Havelund,Arnaud Stigliani,Nils J Færgeman,Audrey Prézelin,Julie Rivière,Anne Couturier-Tarrade,Vyacheslav Akimov,Blagoy Blagoev,Betina Elfving,Ditte Neess,Ulla Vogel,Konstantin Khodosevich,Karin Sørig Hougaard,Albin Sandelin

Cell reports 43:114236 PubMed38758650

2024

Mapping the tumor stress network reveals dynamic shifts in the stromal oxidative stress response.

Applications

Unspecified application

Species

Unspecified reactive species

Chen Lior,Debra Barki,Coral Halperin,Christine A Iacobuzio-Donahue,David Kelsen,Ruth Scherz- Shouval

Cell and tissue research 391:545-560 PubMed36525128

2022

CPNE1 regulates myogenesis through the PERK-eIF2α pathway mediated by endoplasmic reticulum stress.

Applications

Unspecified application

Species

Unspecified reactive species

Lin Chen,Ling Pan,Yuexi Zeng,Xiaonan Zhu,Li You

Nature cell biology 24:940-953 PubMed35654839

2022

A stromal Integrated Stress Response activates perivascular cancer-associated fibroblasts to drive angiogenesis and tumour progression.

Applications

Unspecified application

Species

Unspecified reactive species

Ioannis I Verginadis,Harris Avgousti,James Monslow,Giorgos Skoufos,Frank Chinga,Kyle Kim,Nektaria Maria Leli,Ilias V Karagounis,Brett I Bell,Anastasia Velalopoulou,Carlo Salas Salinas,Victoria S Wu,Yang Li,Jiangbin Ye,David A Scott,Andrei L Osterman,Arjun Sengupta,Aalim Weljie,Menggui Huang,Duo Zhang,Yi Fan,Enrico Radaelli,John W Tobias,Florian Rambow,Panagiotis Karras,Jean-Christophe Marine,Xiaowei Xu,Artemis G Hatzigeorgiou,Sandra Ryeom,J Alan Diehl,Serge Y Fuchs,Ellen Puré,Constantinos Koumenis

Experimental and therapeutic medicine 20:3244-3252 PubMed32855694

2020

Hydrogen peroxide induces nucleus pulposus cell apoptosis by ATF4/CHOP signaling pathway.

Applications

Unspecified application

Species

Unspecified reactive species

Yi Liu

Scientific reports 9:15742 PubMed31673100

2019

GLP-1 receptor agonist liraglutide has a neuroprotective effect on an aged rat model of Wolfram syndrome.

Applications

Unspecified application

Species

Unspecified reactive species

Kadri Seppa,Maarja Toots,Riin Reimets,Toomas Jagomäe,Tuuliki Koppel,Maia Pallase,Stine Hasselholt,Maiken Krogsbæk Mikkelsen,Jens Randel Nyengaard,Eero Vasar,Anton Terasmaa,Mario Plaas

Nature communications 10:1486 PubMed30940805

2019

Crizotinib-induced immunogenic cell death in non-small cell lung cancer.

Applications

Unspecified application

Species

Unspecified reactive species

Peng Liu,Liwei Zhao,Jonathan Pol,Sarah Levesque,Adriana Petrazzuolo,Christina Pfirschke,Camilla Engblom,Steffen Rickelt,Takahiro Yamazaki,Kristina Iribarren,Laura Senovilla,Lucillia Bezu,Erika Vacchelli,Valentina Sica,Andréa Melis,Tiffany Martin,Lin Xia,Heng Yang,Qingqing Li,Jinfeng Chen,Sylvère Durand,Fanny Aprahamian,Deborah Lefevre,Sophie Broutin,Angelo Paci,Amaury Bongers,Veronique Minard-Colin,Eric Tartour,Laurence Zitvogel,Lionel Apetoh,Yuting Ma,Mikael J Pittet,Oliver Kepp,Guido Kroemer
제품이 사용된 논문 모두 보기

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