The national grid and other life-sustaining critical infrastructures face an unprecedented threat from prolonged blackouts,which could last over a year and pose a severe risk to national security.Whether caused by phy...The national grid and other life-sustaining critical infrastructures face an unprecedented threat from prolonged blackouts,which could last over a year and pose a severe risk to national security.Whether caused by physical attacks,EMP(electromagnetic pulse)events,or cyberattacks,such disruptions could cripple essential services like water supply,healthcare,communication,and transportation.Research indicates that an attack on just nine key substations could result in a coast-to-coast blackout lasting up to 18 months,leading to economic collapse,civil unrest,and a breakdown of public order.This paper explores the key vulnerabilities of the grid,the potential impacts of prolonged blackouts,and the role of AI(artificial intelligence)and ML(machine learning)in mitigating these threats.AI-driven cybersecurity measures,predictive maintenance,automated threat response,and EMP resilience strategies are discussed as essential solutions to bolster grid security.Policy recommendations emphasize the need for hardened infrastructure,enhanced cybersecurity,redundant power systems,and AI-based grid management to ensure national resilience.Without proactive measures,the nation remains exposed to a catastrophic power grid failure that could have dire consequences for society and the economy.展开更多
Background:Transmembrane emp24 trafficking protein 3(TMED3)is associated with the development of several tumors;however,whether TMED3 regulates the progression of prostate cancer remains unclear.Materials and Methods:...Background:Transmembrane emp24 trafficking protein 3(TMED3)is associated with the development of several tumors;however,whether TMED3 regulates the progression of prostate cancer remains unclear.Materials and Methods:Short hairpin RNA was performed to repress TMED3 in prostate cancer cells(DU145 cells)and in a prostate cancer mice model to determine its function in prostate cancer in vitro and in vivo.Results:In the present study,we found that TMED3 was highly expressed in prostate cancer cells.In vitro,shTMED3 treatment suppressed the proliferation,invasion,and migration and promoted the apoptosis of DU145 cells.Additionally,the Kyoto Encyclopedia of Genes and Genomes pathway enrichment analysis showed a strong correlation between TMED3 and forkhead box O transcription factor(FOXO)pathway.Furthermore,TMED3 inhibition efficiently decreased FOXO1a and FOXO3a phosphorylation.In vivo,TMED3 downregulation suppressed the apoptosis,growth,and metastasis of prostate cancer cells via FOXO1a and FOXO3a.Conclusion:The present findings show that TMED3 participates in the regulation of prostate cancer progression via FOXO1a and FOXO3a phosphorylation,thereby revealing a novel mechanism underlying prostate cancer development and suggesting that TMED3 inhibition may serve as a novel strategy for prostate cancer treatment.展开更多
This article presents an active electro-optic(EO)modulation electromagnetic pulse(EMP)sensor powered by laser.The sensor simulation model is established,and the temporal response characteristics of the sensor are anal...This article presents an active electro-optic(EO)modulation electromagnetic pulse(EMP)sensor powered by laser.The sensor simulation model is established,and the temporal response characteristics of the sensor are analyzed based on finite element method(FEM).The laser powered supply circuit and receiving modulation circuit are designed and implemented.A monopole antenna is designed and used to revive the EMP.By integrating the supply circuit,the receiving modulation circuit and the antenna together,the sensor is finally fabricated and encapsulated.Experimental results indicate that with the designed laser powered supply circuit,the sensor can operate continuously and stably.The measured standard 1.2/50μs lightning electromagnetic pulse(LEMP)in the time domain agrees well with the input LEMP voltage waveform.The linear maximum and minimum measurable electric fields of the sensor are 20.8 kV/m and 221 V/m,respectively.All the results demonstrate that the sensor can provide an effective technical means for the measurement of EMP in the time domain.展开更多
文摘The national grid and other life-sustaining critical infrastructures face an unprecedented threat from prolonged blackouts,which could last over a year and pose a severe risk to national security.Whether caused by physical attacks,EMP(electromagnetic pulse)events,or cyberattacks,such disruptions could cripple essential services like water supply,healthcare,communication,and transportation.Research indicates that an attack on just nine key substations could result in a coast-to-coast blackout lasting up to 18 months,leading to economic collapse,civil unrest,and a breakdown of public order.This paper explores the key vulnerabilities of the grid,the potential impacts of prolonged blackouts,and the role of AI(artificial intelligence)and ML(machine learning)in mitigating these threats.AI-driven cybersecurity measures,predictive maintenance,automated threat response,and EMP resilience strategies are discussed as essential solutions to bolster grid security.Policy recommendations emphasize the need for hardened infrastructure,enhanced cybersecurity,redundant power systems,and AI-based grid management to ensure national resilience.Without proactive measures,the nation remains exposed to a catastrophic power grid failure that could have dire consequences for society and the economy.
基金supported by Guangxi Medical and Health Appropriate Technology Development and Promotion Application Project(S2022022).
文摘Background:Transmembrane emp24 trafficking protein 3(TMED3)is associated with the development of several tumors;however,whether TMED3 regulates the progression of prostate cancer remains unclear.Materials and Methods:Short hairpin RNA was performed to repress TMED3 in prostate cancer cells(DU145 cells)and in a prostate cancer mice model to determine its function in prostate cancer in vitro and in vivo.Results:In the present study,we found that TMED3 was highly expressed in prostate cancer cells.In vitro,shTMED3 treatment suppressed the proliferation,invasion,and migration and promoted the apoptosis of DU145 cells.Additionally,the Kyoto Encyclopedia of Genes and Genomes pathway enrichment analysis showed a strong correlation between TMED3 and forkhead box O transcription factor(FOXO)pathway.Furthermore,TMED3 inhibition efficiently decreased FOXO1a and FOXO3a phosphorylation.In vivo,TMED3 downregulation suppressed the apoptosis,growth,and metastasis of prostate cancer cells via FOXO1a and FOXO3a.Conclusion:The present findings show that TMED3 participates in the regulation of prostate cancer progression via FOXO1a and FOXO3a phosphorylation,thereby revealing a novel mechanism underlying prostate cancer development and suggesting that TMED3 inhibition may serve as a novel strategy for prostate cancer treatment.
基金supported by the National Natural Science Foundation of China(No.62162034)Yunnan Fundamental Research Projects(No.202201AT070189)。
文摘This article presents an active electro-optic(EO)modulation electromagnetic pulse(EMP)sensor powered by laser.The sensor simulation model is established,and the temporal response characteristics of the sensor are analyzed based on finite element method(FEM).The laser powered supply circuit and receiving modulation circuit are designed and implemented.A monopole antenna is designed and used to revive the EMP.By integrating the supply circuit,the receiving modulation circuit and the antenna together,the sensor is finally fabricated and encapsulated.Experimental results indicate that with the designed laser powered supply circuit,the sensor can operate continuously and stably.The measured standard 1.2/50μs lightning electromagnetic pulse(LEMP)in the time domain agrees well with the input LEMP voltage waveform.The linear maximum and minimum measurable electric fields of the sensor are 20.8 kV/m and 221 V/m,respectively.All the results demonstrate that the sensor can provide an effective technical means for the measurement of EMP in the time domain.