Grayscale Has Identified 4 Blockchains for AI Development

cryptonews.ruPublicado em 2026-08-12Última atualização em 2026-08-12

Resumo

Grayscale Research has identified four public blockchains poised to benefit from the proliferation of artificial intelligence (AI). According to researcher Zach Pandl, AI adoption will create new demand for blockchain in three key areas: AI-agent finance, verifiable computation records, and decentralized alternatives to centralized AI. The report highlights four networks for these use cases. Ethereum and Solana are seen as foundational infrastructure for financial transactions involving autonomous AI agents, enabling micropayments and automated trading. The World blockchain could provide a layer for verifiable digital identity and reputation, helping distinguish humans from AI online. Finally, Bittensor and its $TAO token are cited as a potential decentralized alternative to centralized AI platforms, though the project faces scrutiny over its actual level of decentralization following internal conflicts.

Zach Pandl, Head of Research at Grayscale, stated that the proliferation of artificial intelligence will create new demand for public blockchains. In his research for Grayscale, he highlighted three key directions—AI agent-involved finance, verifiable records of computations and identity, and decentralized alternatives to centralized AI.

According to Pandl, infrastructure for these scenarios could be provided by four cryptocurrency networks, linked to three potential needs of the AI economy:

  • Ethereum – settlement infrastructure for AI agent finance;
  • Solana – fast blockchain settlements for the agent economy;
  • World – verifiable digital identity;
  • Bittensor – decentralized alternative to centralized AI platforms.

AI Agents Will Create Demand for Blockchain Payments

Pandl believes that artificial intelligence and public blockchains are complementary technologies. As AI spreads, traditional financial infrastructure may face new requirements that are better met by the capabilities of programmable blockchain networks.

The most obvious example, according to the researcher, is finance involving AI agents. Such systems will be able to act on behalf of users, but they will need programmable wallets capable of storing and using funds without constant human intermediation.

According to Pandl, the activity of AI agents could stimulate demand for:

  • micropayments;
  • instant cross-border settlements;
  • automated trading;
  • automated risk management.

It is precisely for such scenarios, in Grayscale's view, that Ethereum and Solana are suitable as infrastructure for settlements.

At the same time, the development of agentic AI will require not only payments but also ways to verify the actions of the agents themselves. For example, companies will need to determine which models, data, and rules the AI used when making a particular decision.

Blockchain Could Become a Layer for Identity and Reputation

Another direction Pandl mentioned is creating verifiable records of computations, human identity, and the reputation of AI agents.

This is especially important in cases where a user grants an AI the right to perform financial or other high-risk actions on their behalf. Before making an investment or purchasing goods on a person's behalf, an agent may need a verified reputation.

Separately, the researcher drew attention to the problem of distinguishing between humans and AI on the internet. For example, social platforms could verify whether an account belongs to a unique human without requiring disclosure of their identity.

In this context, Grayscale sees a potential role for World. The World infrastructure could be used to verify human identity and distinguish between humans and AI agents.

Bittensor Offers an Alternative to Centralized AI

The third direction Grayscale identified is decentralized artificial intelligence. Pandl noted that the development of AI concentrates capital, computational resources, and control in the hands of a small number of technology companies.

In his opinion, this raises questions regarding the governance, bias, and censorship of AI systems. An alternative could be open, decentralized networks that users can access, contribute to, and own a stake in.

One example Pandl named is Bittensor and its token $TAO.

However, the network itself was previously at the center of a debate about its level of decentralization. One of the key developers, Covenant AI, announced its departure from Bittensor, accusing the project's leadership of de facto centralization and pressure on the ecosystem. Amid the conflict, the market capitalization of $TAO decreased by approximately $820 million.

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Perguntas relacionadas

QWhat are the three key directions for public blockchains in the AI economy identified by Grayscale's Zach Pandl?

AThe three key directions identified are: AI agent-powered finance, verifiable records for compute and identity, and decentralized alternatives to centralized AI.

QWhich two blockchains did Grayscale highlight as potential settlement infrastructure for AI agent economies, and why?

AGrayscale highlighted Ethereum and Solana as potential settlement infrastructure. Ethereum is mentioned as a general settlement infrastructure, while Solana is noted for its fast transaction speeds suitable for high-frequency agent activity.

QWhat specific problem does Grayscale suggest World could help solve in the context of AI development?

AGrayscale suggests World could help solve the problem of verifying human identity and distinguishing between humans and AI agents online, which is crucial for social platforms and reputation systems.

QWhat is the main criticism or challenge associated with Bittensor mentioned in the article?

AThe main challenge mentioned is the debate over its level of decentralization. A key developer left the project, accusing its leadership of centralization and exerting pressure on the ecosystem, leading to a significant drop in its market cap.

QAccording to Zach Pandl, what types of financial activity could AI agents drive demand for?

AAI agents could drive demand for micropayments, instant cross-border settlements, automated trading, and automated risk management.

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