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Why Bitcoin Is Stuck Near $65,000 as AI Fuels Inflation

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Why Bitcoin Is Stuck Near $65,000 as AI Fuels Inflation

Bitcoin has returned to the $65,000 range, but the recovery is struggling to develop into a wider rally. The asset traded near $65,975 on Wednesday after briefly crossing $66,000, its highest level since early June. 

US spot Bitcoin ETFs recorded $203.2 million in net inflows on Tuesday, marking six consecutive positive days. However, those inflows remain small compared with the combined $6.9 billion withdrawn during May and June.

The main obstacle is no longer limited to the crypto market. Bitcoin now faces pressure from an AI investment boom that is influencing inflation, interest rates, bond yields and competition for investor capital.

Massive Outflows in May and June Shadow the Slow Recovery in US Bitcoin ETFs. Source: SoSoValue

The AI Boom Is Keeping Inflation Alive

The Federal Reserve directly linked some of the recent inflation pressure to artificial intelligence investment in the minutes of its June meeting.

Officials said strong demand for data centers, electricity and high-tech equipment was pushing up prices. They also warned that AI investment could keep economic growth above its sustainable rate, making inflation more persistent.

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The latest corporate results show the scale of that demand.

Alphabet raised its expected 2026 capital spending to between $195 billion and $205 billion after Google Cloud revenue jumped 82% in the latest quarter. 

Microsoft expects to spend around $190 billion this calendar year, including roughly $25 billion caused by higher component prices.

Meanwhile, Nvidia reported that data-center revenue rose 92% year-on-year to $75.2 billion in its latest quarter. The figures show that companies are still competing heavily for chips, servers, energy, and construction capacity.

Fed Chair Kevin Warsh said high-tech equipment investment had grown by nearly 25% over the year to the first quarter. He said the central bank was watching the effect on inflation and employment.

Higher Rates Leave Less Money for Bitcoin

This matters for Bitcoin because persistent inflation reduces the Fed’s ability to lower interest rates.

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US inflation eased in June as energy prices fell. However, consumer prices remained 3.5% higher than a year earlier, while producer prices were up 5.5%. 

Both remain above levels that would give the Fed a clear reason to ease policy quickly.

Bond markets have responded. The two-year Treasury yield reached 4.301% on Wednesday, its highest level in more than a year, while the 10-year yield approached 4.66%. 

Higher yields make government bonds and cash more attractive compared with volatile assets such as Bitcoin.

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Nikita Zuborev, senior analyst at BestChange, described the same pressure.

“For now, an expensive dollar and high bond yields are pulling liquidity away from risky assets such as cryptocurrencies,” he said.

The dollar has also received support from higher rate expectations and renewed Middle East tensions. That creates another problem for Bitcoin, which often struggles when the dollar strengthens.

AI Stocks Are Competing for the Same Capital

Evgeny Popov, editor-in-chief at InvestFuture, said capital that previously might have entered crypto was moving toward companies linked to AI, chips, data centers and energy infrastructure.

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“That is where investors currently see money, growth and a clearer story about the future,” Popov said.

Market performance broadly supports his argument. Semiconductor stocks remained up around 69% for 2026 as of this week, while Bitcoin was still down about 25% for the year. 

Bitcoin has performed better than chip stocks during July, suggesting some capital may be rotating back, but the longer-term gap remains wide.

Bitcoin may need more than several days of ETF inflows to break out of the $60,000 – $70,000 zone. A stronger move would likely require lower inflation, falling bond yields, a less hawkish Fed and sustained institutional demand.

The Fed’s next decision is due on July 29. Until then, Bitcoin remains caught between improving ETF flows and an AI investment cycle that is keeping money expensive.

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Scaramucci Says CLARITY Act’s Crypto Ethics Isn’t Enough, Wants Insider Trading Gone

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Major County Sheriffs of America Drop Opposition to CLARITY Act

Anthony Scaramucci says the Clarity Act’s new ban on federal officials sponsoring crypto doesn’t go far enough. The SkyBridge Capital founder argues the same ethics logic should extend to insider trading across the board, not just digital assets.

Speaking on CNBC, Scaramucci pointed to Congress’s own pay structure as the root problem.

The Pelosi Problem

Members of Congress earn $180,000 a year, a salary Scaramucci says pushes some toward trading on information they gather in office. His proposed fix borrows from Singapore, where officials draw multimillion-dollar salaries in exchange for stricter ethics enforcement.

Scaramucci’s argument leans on a data point that’s hard to ignore. Public trading records show former House Speaker Nancy Pelosi’s portfolio, managed by her husband Paul Pelosi, has consistently beaten both the S&P 500 and Warren Buffett’s Berkshire Hathaway.

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Her 2024 disclosures showed a 70.9% gain against the index’s 24.9% return, and cumulative figures since 2014 put her total returns thousands of percentage points ahead of the benchmark. Rep. Anna Paulina Luna has previously accused Pelosi of trading on nonpublic information, though Pelosi has not been charged with any wrongdoing.

A Familiar Playbook

Scaramucci also referenced a past attempt to weaken congressional trading oversight, saying lawmakers once rolled back a transparency measure through a procedural vote designed to avoid public scrutiny.

The comparison tracks a real precedent: Congress passed the STOCK Act in April 2012 to bar members from trading on nonpublic information, then quietly amended it a year later to scrap the requirement for a searchable online database of staff trades, passing the rollback by unanimous consent with no recorded vote.

Treasury Secretary Scott Bessent has since pushed to revive stricter limits on congressional stock trading.

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“They can’t afford two houses… they have all these different loopholes, and they have all these junkets, and they have these ways to get them money.”
— Anthony Scaramucci, CNBC

The updated Clarity Act already bars the president and other federal officials from issuing or sponsoring digital assets, a provision Scaramucci previously called this same bill’s ethics compromise dead on arrival. Whether Congress extends that same logic to its own stock trades remains an open question heading into the bill’s tight window before August recess.

If the crypto ban sets a precedent, Scaramucci’s broader ask may be the harder sell in an institution that has resisted it for over a decade.

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Crypto Now Employs More Americans Than Coffee or Tobacco Manufacturing Industries

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Crypto Employment Footprint

The crypto industry directly supports 34,000 jobs and contributes $55 billion to the US economy in 2026.

The findings come from a new report by the National Cryptocurrency Association (NCA), which commissioned the study from the Pragmatic Policy Group (PPG). 

How Crypto Jobs Stack Up

To put that headcount in context, the report measured it against familiar industries. Crypto’s 34,000 direct workers now outnumber coffee and tea manufacturing, which supports 28,400.

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Crypto Employment Footprint
Crypto Employment Footprint. Source: National Cryptocurrency Association Report

The gap widens against other benchmarks. Crypto tops both cement manufacturing at 15,300 and tobacco manufacturing at 10,600.

The report also puts the average crypto-related job at $133,000 a year, more than double the national median of $64,000.

It ranks that average above other high-paying fields, listing information and technology at $104,000 and manufacturing at $76,000. In addition, of the $55 billion total economic contribution, roughly $31 billion is worker income.

The Wider Economic Footprint

The report also estimates indirect effects. It finds that each direct crypto job supports 6 more across the economy. That brings total supported employment to 232,000 jobs in 2026.

The total figure accounts for direct, indirect, and induced jobs, not just crypto company payrolls. Supplier industries account for 75,000 roles, while worker spending adds another 123,000.

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The distribution is uneven. California, New York, and Texas hold 60% of US crypto jobs, followed by Washington and North Carolina. Heartland states account for more than 17,000 positions.

Jobs Supported by the Crypto Industry in Each State
Jobs Supported by the Crypto Industry in Each State. Source: National Cryptocurrency Association Report

Overall, crypto’s economic weight now extends well beyond trading, reaching into wages, supplier industries, and household spending across the country.

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Arbitrum-based AFX Trade drained of $24 million after bridge keys compromised

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Arbitrum-based AFX Trade drained of $24 million after bridge keys compromised

Another week, another multi-million-dollar hack in DeFi, and once again, it’s an off-chain compromise rather than a smart contract exploit.

AFX Trade, a decentralized perpetuals exchange that settles in dollar-pegged stablecoin USDC, was drained of about $24.15 million on Wednesday after an attacker compromised the validator signing keys behind a bridge the protocol operates on Arbitrum, blockchain data shows.

In other words, the smart contract did what it’s supposed to do – verify the signature and execute the transaction. The problem was with the private keys that generated those signatures, as attackers compromised the private validator signing keys (hot keys held offchain by the bridge operators or validators).

Steven Goldfeder, co-founder of Offchain Labs, which develops and maintains the network, said the Arbitrum native bridge “has not been hacked or exploited in any way” and that the transaction originated from a third-party protocol.

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A hack of Arbitrum’s own bridge would signal risk across the entire layer-2 network, but a compromised protocol running on top of it is a contained failure.

Nothing in the bridge’s own code logic was broken. Bridges are blockchain-based tools for transferring tokens between various networks, including those they were not initially supported on.

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SEC Adds Three Crypto Rules to 2026 Regulatory Agenda

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SEC Adds Three Crypto Rules to 2026 Regulatory Agenda


The Securities and Exchange Commission listed three crypto-focused rulemakings in its 2026 Unified Regulatory Agenda, targeting proposed rules as soon as July, according to the agency's own Agency Rule List published on reginfo.gov. The agenda entries cover crypto asset offerings, broker-dealer… Read the full story at The Defiant

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Uber Cuts 10% of Customer Service Staff in AI Efficiency Push

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CEO of Australia’s Largest Bank Sees AI Workforce Consequences Across the Economy

Uber cut 10% of its customer service jobs on Wednesday, marking the first time the company has tied layoffs directly to an artificial intelligence (AI) efficiency push.

The reductions hit Uber’s community operations team. Remote workers on the team were also told to relocate to a hub office under the company’s return-to-office mandate.

Why Uber Is Cutting Support Roles

Megha Yethatika, Uber’s vice president of global community operations, told her division that the organization had become “too complex and siloed.” She said the team had made progress with AI but needed a cleaner foundation to build on, according to a memo reported by Bloomberg.

“We cannot scale frontier technology on top of fragmented processes,” Yethatika said.

According to an Uber spokesperson, the company seeks “to simplify operations, strengthen in-person collaboration, and continue to embrace AI”.

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The cut is Uber’s second round of reductions in under two months. In June, the company trimmed 23% of its people division, under 1% of its 34,000 global workers, after a new president took charge.

Uber said in May it would slow hiring because of internal AI use. However, it still lists more than 500 open roles, including engineers for its robotaxi partnerships.

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Uber Joins a Widening 2026 Layoff Wave

Uber’s move mirrors a broader shift across the job market. AI was cited in 101,743 US job cut announcements through June, roughly 23% of the total, according to outplacement firm Challenger, Gray and Christmas.

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AI has led all stated reasons for layoffs for four straight months. Yet the impact of AI on jobs remains contested.

Jeff Bezos recently dismissed concerns that AI would displace jobs, arguing that the technology will reshape household economics and create labor scarcity.

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White House Claims Moonshot AI Copied Anthropic Technology for K3

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Crypto Breaking News

A senior official from the White House’s Office of Science and Technology Policy has accused the Chinese AI firm behind Kimi K3 of using “covert industrial distillation” techniques to replicate capabilities from U.S. models. The allegation, posted to X on Wednesday by Michael Kratsios, underscores how U.S. concerns about AI competitiveness are increasingly blending with fears of large-scale intellectual property (IP) theft.

Kratsios said the company built an internal platform to distill U.S. models “at scale,” specifically using methods intended to evade detection. While he argued that distillation—compressing a model into a smaller one—can be legitimate and part of open innovation, he framed the alleged approach as unacceptable because it targets proprietary American technology rather than improving models through transparent research.

Key takeaways

  • White House OSTP Director Michael Kratsios alleged Chinese firm Moonshot AI used large-scale covert distillation tied to the Kimi K3 release.
  • Kratsios contrasted legitimate model distillation with alleged industrial-scale techniques aimed at stealing U.S. IP and avoiding detection.
  • Some AI researchers dispute claims that Anthropic’s Fable was used to produce Kimi K3’s performance, citing technical plausibility and timing constraints.
  • U.S. officials warned that sanctions and Entity List designations could follow IP-theft-style distillation attacks.

Why the allegation matters beyond headlines

AI distillation is not inherently controversial. In general terms, distillation helps create smaller, more efficient models by training them on outputs generated by a larger “teacher” model. The White House’s argument, as stated by Kratsios, is that scale and secrecy change the nature of the activity—turning a common engineering practice into something closer to a targeted extraction of proprietary capability.

That distinction is critical for investors, developers, and researchers because it signals a potential shift in how regulators and governments may view certain AI training pipelines. If authorities treat “covert industrial distillation” as IP theft, it could influence enforcement priorities, compliance expectations, and the willingness of model providers to share weights, outputs, or licensing terms—especially across geopolitical lines.

Timing and the dispute over Anthropic’s role

Kratsios’s claim places particular focus on the question of whether U.S. model technology was used in the preparation of Kimi K3. Cointelegraph previously reported that Anthropic’s Fable 5 was taken offline quickly due to U.S. export controls, then re-released on July 1. Kimi K3, meanwhile, launched on July 16—creating what critics describe as a narrow window for any distillation-derived transfer.

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Elie Bakouch, a researcher at Prime Intellect, publicly questioned whether the technical story matches the observed outcomes. In an X post referenced in the original reporting, Bakouch argued that there are only “15 days between fable 5 ban removal and kimi K3 release,” and he added that the performance “could” not be explained in a straightforward way by distillation from Fable.

Dean Ball, head of strategic futures at OpenAI, also pushed back. On Friday, Ball said he did not believe K3’s performance could be “explained away by distillation or anything like that.” Both responses reflect a broader point: even if distillation happened, it may not be the sole—or even the primary—reason for a model’s capabilities, and establishing a clean causal link can be technically difficult.

In the absence of publicly available technical evidence, these disputes matter because they highlight uncertainty. Government accusations may have intelligence backing, but for the wider AI community, the plausibility and traceability of model-to-model influence is a separate question from whether the activity would violate policy or law.

Washington escalates from concerns to potential enforcement

The posture from U.S. officials appears aimed at deterrence. In addition to Kratsios’s claim that “covert industrial distillation” intended to steal U.S. technology is unacceptable, U.S. Treasury Secretary Scott Bessent warned that sanctions and restrictions could be pursued.

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Bessent said the U.S. supports open-source AI and the innovation it enables, but he argued open source does not mean “open season” on American IP. He also warned that if firms conduct covert, industrial-scale distillation attacks that cross into IP theft, consequences could include sanctions and Entity List designations.

That statement suggests the U.S. may attempt to treat certain distillation behaviors under the same enforcement logic used for other technology-transfer and IP-protection efforts. For AI companies, the practical takeaway is that even widely used ML techniques could be reinterpreted depending on intent, transparency, and scale.

It also raises a policy tension: distillation can improve accessibility and efficiency, but enforcement actions could push industry toward more restrictive handling of model outputs and training procedures. Developers may respond by tightening documentation, auditing data provenance, or changing how they handle third-party model access.

What to watch next

Whether the dispute becomes a broader enforcement campaign will likely depend on what additional evidence, if any, is made public and how regulators define “industrial-scale” and “covert” distillation in measurable terms. For now, observers should watch for any formal government actions tied to Kimi K3 and for further clarification from researchers on what technical signals can reliably connect teacher models to student performance.

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US Accuses Moonshot AI of Covert Anthropic Model Distillation

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US Accuses Moonshot AI of Covert Anthropic Model Distillation

A White House official accused Moonshot AI of distilling Anthropic’s Fable AI model to develop Kimi K3, which launched last week.

In a post on X on Wednesday, White House Office of Science and Technology Policy Director Michael Kratsios alleged the Chinese AI firm developed an internal platform to distill US models at scale, using methods designed to evade detection.

“Legitimate AI distillation used to create smaller, more efficient models plays a vital role in this open innovation ecosystem,” he said. “However, large-scale, covert industrial distillation aimed at stealing proprietary U.S. technology and undermining American research is unacceptable.”

Kimi K3 has emerged as one of China’s most capable AI models, intensifying Washington’s concerns that American models are being covertly used to accelerate China’s AI progress.

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However, some AI researchers questioned claims that Anthropic’s latest AI model was used to train Kimi K3. 

Anthropic’s Fable 5 was re-released on July 1 after it was quickly taken offline due to US export controls, while Kimi K3 launched on July 16, giving a narrow window for distillation attacks to occur.

“There are only 15 days between fable 5 ban removal and kimi K3 release,” said Elie Bakouch, a researcher at AI startup Prime Intellect.

“I don’t think claiming that K3’s performance comes from fable distillation (even if they did it) makes sense technically.”

Dean Ball, OpenAI’s head of strategic futures, said on Friday he didn’t believe the K3 model’s performance could be “explained away by distillation or anything like that.”

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Related: Anthropic to bring back Fable 5 as US lifts export controls

US Treasury Secretary Scott Bessent warned that the large-scale distillation attacks could result in sanctions and other restrictions.

“We support open-source AI and the innovation it unlocks. But open source is not open season on American IP,” said Bessent.

“When PRC firms conduct covert, industrial-scale distillation attacks that cross the line into IP theft, sanctions and Entity List designations will be on the table.”

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Magazine: Thai scammer’s $122M wallet, Japan embraces crypto credit: Asia Express

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Adam Weitsman Backs Unserious in their Acquisition of Creepz and Psychrome homecoming

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[PRESS RELEASE – Miami, United States, July 22nd, 2026]

Unserious today announced the acquisition of Creepz, one of the most recognizable NFT collections of the 2021-22 cycle. Backed by entrepreneur and investor Adam Weitsman, and with the support of the original founders, the deal places the lizard cult brand under a powerhouse new team.

Most importantly, the acquisition marks a homecoming for Psychrome – the original mastermind and creative genius behind the Creepz lore. Returning to lead IP development, he also brings a resume as a globally exhibited artist whose commercial collaborations span Nike, Salomon, Sneaker Con, Staple, Disney, Warner Bros., and Rovio.

Beyond this foundational creative leadership, the Unserious team brings deep operating experience with a track record spanning consumer brands, entertainment, and enterprise tech, alongside crypto’s largest token launches – including the historic ApeCoin.

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Unserious also took the opportunity to formally deny the existence of lizard people, their alleged evil activities, and any plans for $CREEPZ world domination.

About Unserious

Unserious is reimagining the future of decentralized brands.

The post Adam Weitsman Backs Unserious in their Acquisition of Creepz and Psychrome homecoming appeared first on CryptoPotato.

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Franklin Templeton Sees Agentic AI as Blockchain’s Next Core Use

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Crypto Breaking News

Franklin Templeton’s head of digital assets and innovation says AI agents are poised to become a major demand driver for blockchain networks—specifically the protocols that can support rapid, low-cost payments between machines.

Speaking in a long-form post on X on Wednesday, Sandy Kaul argued that the “agentic AI” economy will require settlement speeds and fee structures that legacy card rails struggle to deliver. He pointed to blockchain ecosystems such as Aptos, Solana, and BNB Chain as better aligned with that needs-based shift.

Key takeaways

  • Franklin Templeton’s Sandy Kaul links AI agents to increased demand for blockchain protocols that can handle machine-to-machine micropayments.
  • Kaul argues traditional payment cards are a poor fit for agentic payments due to fees and slow settlement compared with blockchain transaction finality.
  • A joint Visa and Artemis report contends card-based infrastructure is insufficient for AI agents that require near-zero fees and fast settlement.
  • According to that Visa-Artemis report, the x402 payment protocol processed $15 million in adjusted volume across 109 million+ adjusted transactions since its May 2025 launch.

Why AI agents change the payment requirements

The central thesis is that agentic systems—software that can act autonomously on behalf of users or other systems—will generate a different kind of commerce than today’s human-driven transactions. Kaul framed the opportunity as an evolution beyond the way investors typically approach AI: rather than focusing only on companies “aligned” with AI, he suggested the market may also reward infrastructure designed for automated execution and continuous micro-interactions.

In his view, the payment layer becomes a bottleneck if it cannot support high-frequency, small-value transfers. Agentic micropayments are likely to be time-sensitive and cost-sensitive, meaning even modest frictions—such as higher fees or longer settlement—can make recurring machine payments economically unattractive.

Legacy cards vs. settlement speed

Kaul’s argument is not that card networks are obsolete, but that they were engineered for a different pattern of usage: relatively low-frequency human commerce where settlement delays are rarely a primary constraint.

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He highlighted that visa network settlement can take one to three business days, while certain blockchain networks can finalize transactions in seconds. That timing gap is likely to matter when agents are coordinating continuously, where delays can ripple through workflows and reduce the viability of rapid settlements.

Kaul also pointed to “high fees and settlement times” as the factors that, in his assessment, make traditional payment rails unsuitable for agentic micropayments.

Visa and Artemis: infrastructure gaps for “agentic” commerce

The Franklin Templeton executive’s remarks align with a joint report released last Wednesday by Visa and investment thesis platform Artemis. In that report, the partners argue that conventional cards built for human-scale payments are not designed for the demands of AI agents.

Visa and Artemis specifically emphasize that agentic payments require infrastructure with near-zero fees and faster settlement to make micropayments commercially viable. The report’s framing reinforces Kaul’s thesis that the real battleground is payments throughput and cost efficiency—not just AI capabilities at the application layer.

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Importantly for readers, this is not presented as a purely speculative concept; the report also points to existing machine-payment experimentation and early adoption signals, including activity tied to x402.

What “early adoption” looks like: x402 activity

In the Visa-Artemis report, the x402 payment protocol is highlighted as an example of a machine payment rail showing measurable usage. The report claims that x402, developed by Coinbase, processed $15 million in adjusted volume across more than 109 million adjusted transactions since its May 2025 launch.

For investors and builders, the value of that statistic is less about any single figure and more about the direction it suggests: that machine-payment protocols are beginning to attract usage under a framework designed for frequent transfers. Still, it’s also worth noting the metric is reported as “adjusted volume” and “adjusted transactions,” so readers should treat it as an operational indicator from the report rather than a direct translation into end-user revenue or broader market share.

Signals from payments providers

While the Visa-Artemis analysis criticizes card-based infrastructure as insufficient for agentic needs, the companies are also actively exploring how the broader payment ecosystem might support agentic behavior.

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Visa’s crypto-related division and Stripe-backed Tempo launched AI tools in March, according to coverage referenced in the same context. Visa’s offering is described as enabling same-day payments—an attempt to address speed constraints that agentic micropayments depend on.

In parallel, Kaul’s remarks point readers to blockchain environments where settlement speed is structurally faster, suggesting a practical mismatch: even if card providers add features to move payments more quickly, the fee and settlement model may still not align with the economics of high-volume, machine-to-machine exchanges.

Going forward, the key thing to watch is whether agentic payment demand materializes in a way that drives sustained usage of low-fee, fast-settlement rails—particularly as protocols like x402 and newer infrastructure compete to serve recurring micropayment flows. The open question remains how quickly mainstream agent deployments will scale enough to make settlement and fee constraints decisive rather than theoretical.

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BTC wilts as Clarity Act odds tumble. U.S. deploys B1 bomber against Iran

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BTC wilts as Clarity Act odds tumble. U.S. deploys B1 bomber against Iran

Bond markets are already reacting. The U.S. two-year Treasury yield jumped to 4.31%, its highest level since February 2025, while the benchmark 10-year yield rose to 4.66%, the highest since May, according to TradingView data. Higher yields raise the opportunity cost of holding non-yielding assets such as bitcoin and gold, often prompting investors to rotate out of speculative holdings and into fixed-income securities that now offer more attractive returns.

Adding to the cautious market sentiment, Axios reported that the U.S. military deployed a B-1 long-range bomber on Tuesday to strike targets linked to Iran’s Islamic Revolutionary Guard Corps. The use of the heavy bomber represents a clear escalation in the scale of U.S. operations and suggests Washington may be preparing for a broader campaign, rather than continuing with the more limited strikes seen in recent days.

Regulatory uncertainty persisted after a group of key Senate Democrats said the newest draft of the Digital Asset Market Clarity Act (Clarity Act) “falls short” on ethics and other critical provisions.

Betting markets on decentralized platform Polymarket reacted swiftly, with the implied odds of the Clarity Act passing tumbling from 46% to 38%.

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Senate Republicans released the updated draft earlier Wednesday, which includes an ethics provision agreed to by the White House and President Donald Trump. Senator Bernie Moreno called it “the most powerful ethics language in U.S. history.

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