Biotechnology Becomes a Measure of National Power as U.S. Reframes Research as a Security Objective
核心洞察
The new U.S. National Security Science and Technology Strategy (NSSTS) explicitly frames scientific and technological leadership as a national security objective, placing biotechnology alongside AI and quantum computing as potentially transformative technologies.
The COVID-19 pandemic acted as an accelerator, exposing the fragility of global supply chains for medicines and turning biomedical research capacity into an issue of national resilience and strategic autonomy.
The convergence of AI and biology is transforming biology from a descriptive science into a predictive, design-oriented one, enabling in silico design of biological sequences and rapid conversion into physical material.
The most significant shift in the new U.S. National Security Science and Technology Strategy (NSSTS) may be conceptual: scientific and technological leadership is no longer simply a prerequisite for economic competitiveness. It is itself a national security objective. The strategy, designed to support the goals of the 2025 U.S. National Security Strategy, reframes the relationship between research, innovation, industry and security, placing biotechnology alongside artificial intelligence and quantum technologies among the fields Washington sees as potentially most transformative in the years ahead.
Giuseppe Novelli (搜索), professor of medical genetics at the University of Rome Tor Vergata (搜索) and a member of Italy's National Committee for Biosafety, Biotechnology and Life Sciences at the Prime Minister's Office, explains that the underlying assumption is that great-power competition increasingly depends on the ability to generate knowledge, rapidly turn it into technology and protect research, data, infrastructure and supply chains from dependence on — or interference by — adversaries.
Research as a Source of Power
"The new NSSTS explicitly frames scientific and technological leadership as a national security objective, placing biotechnology, together with AI and quantum computing, among potentially transformative technologies — and I would add disruptive ones," Professor Novelli says. According to Novelli, that recognition reflects "a profound transformation of biotech's role in the geopolitical arena."
Life sciences occupy a particular place in this new security landscape. Synthetic biology, genomic and epigenomic engineering, protein design, new therapy development and manufacturing, biomanufacturing and neurotechnologies all appear on the U.S. list of critical and emerging technologies.
Covid-19 marked a turning point. The pandemic demonstrated both the power of biomedical research and the vulnerability of systems heavily dependent on global supply chains for medicines, active pharmaceutical ingredients and medical devices. "The pandemic acted as an accelerator, revealing the fragility of global supply chains for medicines and medical devices and turning biomedical research capacity into an issue of national resilience and strategic autonomy," Novelli says. "Today, biotechnology is considered critical infrastructure, on a par with semiconductors or energy."
In the United States, that approach is also reflected in the debate over the Biosecure Act, a proposal aimed at restricting federal government relationships with certain biotechnology providers considered a risk.
When AI Meets Biology
The convergence between biotechnology and artificial intelligence is making that shift even deeper. The U.S. NSSTS includes not only AI and foundation models among critical technologies, but also multi-agent systems, robotics, embodied intelligence and tools for reasoning and decision-making. On the biotech side, it identifies research frontiers ranging from synthetic biology and genome engineering to protein design and new therapies.
For Novelli, the crucial development is precisely the intersection of these two worlds. "AI is transforming biology from a descriptive science into a predictive and design-oriented one." The ability to generate and analyze enormous volumes of multi-omics data — DNA, RNA and proteins — and combine them with AI models can accelerate drug discovery, protein design and personalized therapies.
But it also opens another frontier. "It becomes possible to design biological sequences in silico and rapidly convert them into physical material, synthetic DNA or RNA, through specialized supply chains," Novelli says. He describes this as a "short circuit between digital data and biological material." The result is significant: "Biotech is becoming increasingly similar to an information industry, in which control over data and design algorithms is just as crucial as control over laboratories."
Protecting Research Without Closing It Off
If scientific knowledge becomes a strategic asset, protecting it becomes a national security requirement. But science depends on the circulation of knowledge, researcher mobility and international collaboration. The NSSTS seeks to reconcile the two. On one side, it calls for stronger research security, tighter controls on recipients of federal funding, risk-based assessment criteria, cybersecurity protections for researchers and institutions and, where appropriate, automated systems to screen funded projects. On the other, it states that protecting the scientific ecosystem should not undermine its productivity and agility.
The U.S. strategy explicitly includes genomic, biometric and health data among the sensitive information that should be protected from access and exploitation by foreign adversaries. "Research security, if taken to the extreme, risks fragmenting the scientific community, slowing discoveries and creating bureaucratic inefficiencies," Novelli warns. The challenge is to build protection that is "selective and risk-based": identifying genuinely sensitive technologies and data — from synthetic DNA sequences to large genomic datasets — without turning, in Novelli's words, "every international collaboration into an intelligence operation."
Different models are already emerging. The United Kingdom has focused more heavily on establishing a regulatory framework for research security, while Germany has developed an approach centered on awareness and responsibility among institutions and researchers.
Europe and Italy Respond
The European Union has also begun to place biotechnology within a broader framework of strategic autonomy. The European Biotech Act proposed by the Commission explicitly seeks to strengthen the industrial ecosystem, manufacturing and R&D, expand access to capital, facilitate the use of AI and data, and introduce safeguards against the misuse of biotechnology.
On pharmaceuticals, the Critical Medicines Act addresses supply-chain vulnerabilities. The European Parliament and Council reached a provisional agreement in May on new rules aimed at diversifying supply chains and strengthening EU manufacturing capacity for critical medicines and their active ingredients. The agreement still has to complete the formal adoption process.
"Europe is beginning to understand what is at stake, but it starts from a position of complexity," Novelli says. "The European approach is more oriented toward competitiveness and building industrial capacity, while the American one is more markedly prohibitive and focused on security."
For Italy, the question becomes more concrete. "We are a country with excellence in basic research and a leading role in clinical trials," Novelli says. "Italy is at a crossroads: on the one hand, it is a scientifically relevant country in biotech; on the other, it risks being exposed to dependence on foreign suppliers and still lacks a clear national strategy capable of transforming its scientific capacity into strategic and industrial autonomy."
Italy is not starting from scratch. Novelli points to the National Committee for Biosafety, Biotechnology and Life Sciences, which supports the government from within the Prime Minister's Office, as a potential strategic coordination hub. Italy's National Recovery and Resilience Plan has enabled significant investment in advanced research, including the National Center for Gene Therapy and Drugs based on RNA Technology. But Novelli argues that Italy needs to move beyond temporary interventions toward "structural and multi-year investment" in technologies considered strategic — from synthetic biology and protein design to biomanufacturing and capabilities to respond to biological threats.
"A state's ability to conduct advanced biotech research," Novelli concludes, "is no longer only a matter of scientific progress or economic competitiveness: it is a central element of its ability to ensure the continuity of its population, economy and national security in an age of crises." What is still needed is the shift "from fragmentation to integration": a vision capable of turning biotech research from scientific excellence into a strategic national security asset.
