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AB85049

Anti-ATF-4 antibody

4

(4 Reviews)

|

(18 Publications)

Rabbit Polyclonal ATF-4 antibody. Suitable for ChIP, WB and reacts with Human samples. Cited in 18 publications. Immunogen corresponding to Synthetic Peptide within Human ATF4.

View Alternative Names

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 Images
Western blot - Anti-ATF-4 antibody (AB85049)
  • WB

Unknown

Western blot - Anti-ATF-4 antibody (AB85049)

All lanes:

Western blot - Anti-ATF-4 antibody (ab85049) at 1/500 dilution

All lanes:

HeLa cell lysates

Predicted band size: 38 kDa

Observed band size: 39 kDa

false

Key facts

Host species

Rabbit

Clonality

Polyclonal

Isotype

IgG

Carrier free

No

Reacts with

Human

Applications

ChIP, WB

applications

Immunogen

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

P18848

Reactivity data

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Properties and storage information

Form
Lyophilized
Reconstitution
reconstitute with water at 200µL
Purification technique
Affinity purification Protein A/G
Storage buffer
Preservative: 0.02% Sodium azide
Shipped at conditions
Blue Ice
Appropriate short-term storage conditions
+4°C
Appropriate long-term storage conditions
-20°C
Aliquoting information
Upon delivery aliquot
Storage information
Avoid freeze / thaw cycle

Supplementary information

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.

Product protocols

For this product, it's our understanding that no specific protocols are required. You can visit:

Target data

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

Publications (18)

Recent publications for all applications. Explore the full list and refine your search

Journal of pharmaceutical analysis 15:101228 PubMed41050116

2025

ZFP36 promotes ferroptosis and mitochondrial dysfunction and inhibits malignant progression in osteosarcoma by regulating the E2F1/ATF4 axis.

Applications

Unspecified application

Species

Unspecified reactive species

Shiyue Qin,Hongyang Kong,Lei Jiang

The journal of physiological sciences : JPS 75:100039 PubMed40782567

2025

ATF4 transcriptionally activates NUPR1 to promote ferroptosis in chondrocytes and osteoarthritis development.

Applications

Unspecified application

Species

Unspecified reactive species

Chen Kuang,Taiyang Liao,Lishi Jie,Yibao Wei,Deren Liu,Enrui Hu,Liang Ding,Peimin Wang

Clinical and experimental medicine 25:99 PubMed40156642

2025

YY1-induced transcription of AKR1C3 activates the Hedgehog signalling pathway to enhance lenalidomide resistance and glycolytic activity in multiple myeloma cells.

Applications

Unspecified application

Species

Unspecified reactive species

Yang Chen,Aijia Zhang,Yuan Wang,Daoda Qi,Chengyi Peng,Zihao Liang,Jingjing Guo,Yan Gu

Journal of translational medicine 23:328 PubMed40087679

2025

Apoptotic cell-derived extracellular vesicles-MTA1 confer radioresistance in cervical cancer by inducing cellular dormancy.

Applications

Unspecified application

Species

Unspecified reactive species

Yuan-Run Deng,Qiao-Zhi Wu,Wan Zhang,Hui-Ping Jiang,Cai-Qiu Xu,Shao-Cheng Chen,Jing Fan,Sui-Qun Guo,Xiao-Jing Chen

Cell biology and toxicology 41:33 PubMed39825191

2025

Deciphering SPP1-related macrophage signaling in the pathogenesis of intervertebral disc degeneration.

Applications

Unspecified application

Species

Unspecified reactive species

Xiao-Jun Yu,Peng Zou,Tian-Qi Li,Xiao-Fan Bai,Shan-Xi Wang,Jian-Bin Guan,Yuan-Ting Zhao,Meng-Wei Li,Xiaodong Wang,Ying-Guang Wang,Ding-Jun Hao

Journal of orthopaedic surgery and research 19:685 PubMed39754207

2025

YBX1 alleviates ferroptosis in osteoporosis via the ATF4/FSP1 axis in an mC manner.

Applications

Unspecified application

Species

Unspecified reactive species

Lei Tong,Yanbo Chen,Yan Gao,Xiaoming Gao,Yanming Hao

Journal of biochemical and molecular toxicology 38:e23542 PubMed37712196

2023

Isoquercitrin promotes ferroptosis and oxidative stress in nasopharyngeal carcinoma via the AMPK/NF-κB pathway.

Applications

Unspecified application

Species

Unspecified reactive species

Xinggu Luo,Yongqian Gong,Qingshan Jiang,Qin Wang,Songtao Li,Lijun Liu

Scientific reports 11:11893 PubMed34088951

2021

Microarray analysis reveals ONC201 mediated differential mechanisms of CHOP gene regulation in metastatic and nonmetastatic colorectal cancer cells.

Applications

Unspecified application

Species

Unspecified reactive species

Ashraf Al Madhoun,Dania Haddad,Mustafa Al Tarrah,Sindhu Jacob,Waleed Al-Ali,Rasheeba Nizam,Lavina Miranda,Fatema Al-Rashed,Sardar Sindhu,Rasheed Ahmad,Milad S Bitar,Fahd Al-Mulla

Molecular cell 81:2752-2764.e6 PubMed34081901

2021

ATF3 coordinates serine and nucleotide metabolism to drive cell cycle progression in acute myeloid leukemia.

Applications

Unspecified application

Species

Unspecified reactive species

Daniela Di Marcantonio,Esteban Martinez,Joice S Kanefsky,Jacklyn M Huhn,Rashid Gabbasov,Anushk Gupta,John J Krais,Suraj Peri,YinFei Tan,Tomasz Skorski,Adrienne Dorrance,Ramiro Garzon,Aaron R Goldman,Hsin-Yao Tang,Neil Johnson,Stephen M Sykes

Aging 13:8628-8642 PubMed33714955

2021

Activation of ATF4 triggers trabecular meshwork cell dysfunction and apoptosis in POAG.

Applications

Unspecified application

Species

Unspecified reactive species

Ying Ying,Ran Xue,Yangfan Yang,Sarah X Zhang,Hui Xiao,Huazhang Zhu,Jingming Li,Guo Chen,Yiming Ye,Minbin Yu,Xing Liu,Yimin Zhong
View all publications

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